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- 7395 messages
Academic positions in Artificial Intelligence at the University of Surrey
by roman bauer
Dear all,
We are pleased to announce three open academic positions in Artificial
Intelligence at the University of Surrey, UK:
Professor in Artificial Intelligence (NICE Research Group within the
Computer Science Research Centre)
https://jobs.surrey.ac.uk/Vacancy.aspx?ref=037526
Senior Lecturer in Artificial Intelligence (NICE Research Group within the
Computer Science Research Centre)
https://jobs.surrey.ac.uk/Vacancy.aspx?ref=037426
Professor in Artificial Intelligence (Centre for Vision, Speech and Signal
Processing)
https://jobs.surrey.ac.uk/Vacancy.aspx?ref=037626
Closing date: Sunday 13 September 2026
The School of Computer Science and Electronic Engineering is seeking to
recruit internationally recognised researchers to strengthen its research
and teaching in Artificial Intelligence. These appointments form part of a
wider recruitment campaign and strategic investment across the Faculty:
https://www.jobs.ac.uk/enhanced/linking/university-of-surrey-engineering-ph…
The Professor and Senior Lecturer positions in Computer Science cover areas
including Large Machine Learning Models, Neurosymbolic AI, Trustworthy
Machine Learning, Natural Language Processing, and applications of AI and
machine learning in automated reasoning, security, and software and systems
development. Both posts are aligned with the Nature Inspired Computing and
Engineering (NICE) Research Group within the Computer Science Research
Centre.
The Professor position within the Centre for Vision, Speech and Signal
Processing focuses on leading growth in frontier AI, including multimodal
foundation models, machine learning, agentic, people-centred and
sustainable AI, with applications spanning human and animal health,
biosciences, creative industries, sustainability, robotics and autonomous
systems.
The School is home to two established research centres with substantial
expertise in AI and machine learning: the Computer Science Research Centre
and the Centre for Vision, Speech and Signal Processing. Surrey has an
established international reputation in AI research, ranking first in the
UK for computer vision and among the top five for AI, computer vision,
machine learning, robotics and natural language processing according to
CSRankings.org. The School was also ranked seventh in the UK for Computer
Science research outputs in REF2021.
Computer Science and CVSSP are central to the Surrey Institute for
People-Centred AI, a pan-University initiative bringing together AI
research and expertise across health, engineering, social and behavioural
sciences, business, law and the creative arts. The Institute leads a
portfolio of more than £100 million in grant awards, including major
activities in healthcare and the creative industries, and two doctoral
training programmes supporting more than 100 PhD researchers.
Informal enquiries concerning the Computer Science positions may be
directed to Professor Brijesh Dongol at b.dongol(a)surrey.ac.uk. Enquiries
concerning the CVSSP position may be directed to Professor Adrian Hilton at
a.hilton(a)surrey.ac.uk.
Our staff and students come from around the world, and we are proud of our
friendly and inclusive culture. The University is committed to building a
diverse community, and applications from under-represented groups are
particularly encouraged.
Please share these opportunities with potentially interested candidates and
across your networks.
Best regards,
Roman
*Roman Bauer, Ph.D.*
Senior Lecturer | Head of the NICE Research Group
BioDynaMo Spokesperson (www.biodynamo.org)
*A software suite to enable simulations of large, complex systems for
research or policy making*
*Computer Science Research Centre*
University of Surrey | Guildford, UK
r.bauer(a)surrey.ac.uk | ORCID <https://orcid.org/0000-0002-7268-9359> |
LinkedIn <https://www.linkedin.com/in/roman-bauer-05176094/>
* Watch the **BioDynaMo introduction video*
<https://youtu.be/N6Kzc_AadyI?si=zHymOvrlR3wzAbCf>
Aug. 27, 2026
Postdoc Positions in Cognitive and Computational Neuroscience at Washington University in St. Louis
by Runnan Cao
The Multimodal Cognitive Neuroscience Laboratory, led by Dr. Runnan Cao at Washington University School of Medicine in St. Louis, invites applications for postdoctoral research associate positions.
Our laboratory investigates the neural computations and network-level dynamics underlying visual perception and social cognition in neurotypical individuals and people with neurodevelopmental or psychiatric conditions, including autism and schizophrenia. We combine human intracranial electrophysiology, including iEEG and single-neuron recordings, with high-resolution fMRI, behavioral experiments, and computational modeling to determine how the brain transforms visual input into representations that support social perception and behavior.
These positions offer a distinctive opportunity to join a new laboratory at a formative stage. The successful candidates will help shape its scientific direction, analytical infrastructure, collaborative culture, and multimodal research program.
Research
Projects will be tailored to each postdoctoral researcher’s expertise, interests, and career goals. Potential research areas include:
Neural coding of faces and socially relevant visual information
Neurocomputational mechanisms underlying visual perception and social cognition
Neural coding and network-level dynamics associated with autism and schizophrenia
Multimodal integration of iEEG, single-neuron recordings, high-resolution fMRI, and behavioral data
Computational models linking neural activity to perception and behavior
AI-enabled methods for analyzing complex multimodal neuroscience data
Required Qualifications
Applicants must have:
A PhD or equivalent doctoral degree in neuroscience, cognitive science, psychology, biomedical engineering, computer science, or a related discipline by the appointment start date
A strong research background in fMRI and/or electrophysiology
Experience analyzing neuroimaging, neural, behavioral, or computational data
Proficiency in scientific programming, particularly Python and/or MATLAB
Evidence of research productivity appropriate to career stage
Strong written and oral communication skills
The ability to work both independently and collaboratively in an interdisciplinary environment
Preferred Qualifications
Experience in one or more of the following areas is desirable:
Acquisition or analysis of 7T fMRI data
Human intracranial EEG, ECoG, depth-electrode, or single-neuron recordings
Advanced statistical methods, neural signal processing, or network neuroscience
Machine learning or deep learning applied to neural and behavioral data
Multimodal integration of neuroimaging, electrophysiological, and behavioral data
Agentic AI or AI-assisted scientific workflows
Development of reproducible data-processing pipelines, workflow systems, or reusable computational tools
Candidates who have deep expertise in one methodological area and are eager to develop complementary skills are strongly encouraged to apply.
Mentoring and Professional Development
Each postdoctoral researcher will work with Dr. Cao to develop an individualized research and career-development plan. Training may include advanced fMRI and electrophysiological analysis, computational modeling, machine learning, scientific writing, grant preparation, project leadership, mentoring, and the development of reproducible research tools.
Postdoctoral researchers will be encouraged to establish a clear area of scientific ownership, pursue external funding, build an independent scholarly profile, and develop the skills needed for their chosen career path.
Why Join Our Laboratory?
Postdoctoral researchers will have the opportunity to:
Work with distinctive human intracranial and single-neuron datasets
Develop expertise across complementary spatial and temporal scales of brain measurement
Help establish the methods, workflows, and scientific culture of a growing laboratory
Receive individualized mentoring in research strategy, scientific writing, grant development, and career planning
Build collaborations spanning cognitive, computational, clinical, and systems neuroscience
Pursue independent fellowships and develop a path toward scientific independence
Present their work at national and international scientific meetings
The laboratory is committed to rigorous and open science, intellectual curiosity, constructive collaboration, and an environment in which researchers with different backgrounds and methodological strengths can thrive.
Why WashU and the Neuroimaging Labs?
The laboratory is based in the Neuroimaging Labs Research Center <https://www.mir.wustl.edu/research/research-centers/neuroimaging-labs-resea…> at WashU Medicine’s Mallinckrodt Institute of Radiology. The NIL-RC brings together investigators, postdoctoral researchers, students, clinicians, engineers, and research staff from Radiology, Neurology, Psychiatry, and other departments.
The center has a longstanding record of innovation in neuroimaging methods and has supported major scientific initiatives, including the Human Connectome Project and the Alzheimer’s Disease Research Center. Its research spans human cognition, functional connectivity, precision neuroimaging, brain development and aging, psychiatric and neurological disorders, brain parcellation, and imaging methodology.
The WashU neuroimaging environment includes:
A dedicated research MRI facility <https://www.mir.wustl.edu/research/core-resources/mri-facility/> with three Siemens PRISMA 3T scanners and experienced research imaging personnel
A Siemens MAGNETOM Terra.X 7T MRI system <https://www.mir.wustl.edu/magazine/magnified-medicine-7t-comes-to-mir/> supporting ultra-high-resolution structural and functional imaging
Internationally recognized expertise in functional connectivity, precision neuroimaging, brain mapping, neuroinformatics, and multimodal imaging
Strong connections with Psychiatry, Neurology, Neurosurgery, Neuroscience, Psychological & Brain Sciences, Biomedical Engineering, and Computer Science
Opportunities for clinical and translational collaboration in autism, schizophrenia, epilepsy, Alzheimer’s disease, and other neurological and psychiatric conditions
A broad seminar, training, and professional-development community across WashU Medicine and the university
This environment is especially well suited to researchers who want to connect fine-grained neural recordings with whole-brain imaging, behavior, and computational theory.
How to Apply
Applicants should email the following materials to Dr. Runnan Cao at r.cao(a)wustl.edu <mailto:r.cao@wustl.edu>:
A cover letter describing the applicant’s research experience, methodological expertise, scientific interests, career goals, and potential fit with the laboratory
A current curriculum vitae
Contact information for two professional references; letters are not required with the initial application
Please use the subject line: Postdoctoral Application – [Applicant Name].
Aug. 26, 2026
Call for Papers: Novel Insights and Approaches in Time-frequency Analysis
by alireza valizadeh
Dear colleagues,
I am writing to share a Call for Papers for a new *Nature Collection in
Communications Psychology*, *“Novel Insights and Approaches in
Time-frequency Analysis,”* which is now open for submissions:
https://www.nature.com/collections/ejbgajabei
The Collection brings together new methodological and empirical advances in
time-frequency analysis, with broad relevance to neuroscience and related
fields. We would particularly welcome work introducing novel approaches,
methods, or insights into the analysis and interpretation of time-varying
neural signals.
The Collection is co-edited by *Gabriele Gratton (University of Illinois
Urbana-Champaign)* and *Alireza Valizadeh (IASBS)*.
If you have research that may be a good fit, we would be very happy to
consider your submission. Please see the Collection page for further
details on the scope and submission process.
Best wishes,
Alireza Valizadeh and Gabriele Gratton
------------------------------------------------------Alireza
Valizadeh*Professor *
Theoretical Neuroscience lab, Institute for Advanced Studies in Basic
Sciences (IASBS), Iran
*Principal Investigator*
Zapata-Briceño Institute of Neuroscience and Human Intelligence, Spain
Tel: (+34) 603325584
valizadeh(a)gmail.com
valizadeh(a)institutobz.org <valizadeh(a)humanismoyciencis.org>
Web: https://www.institutobz.org/
<https://fundacionhumanismoyciencia.org/instituto-zapata-briceno/>
http://www.iasbs.ac.ir/~valizade/index.html
--------------------------------------------------------
Aug. 26, 2026
2 PhD positions for 4 years with focus on "Generative Episodic Memory" with Prof. Laurenz Wiskott, Germany, Bochum
by Laurenz Wiskott
From https://jobs.ruhr-uni-bochum.de/jobposting/854eabcb1786fa8b53af20c255cd9aea…
Faculty of Computer Science :
Chair: Theory of Neural Systems
In order to fill a fixed-term position in part-time (29.87 hours/week = 75%) at the
earliest possible date, we are looking for 2 2 Research associates (m/f/x) for 4 years
with focus on "Generative Episodic Memory"
The Institute for Neural Computation is a central research institute at the
Ruhr-University Bochum, see https://www.ini.rub.de/. It focuses on the dynamics and
learning of perception and behavior on a functional level but is otherwise very diverse,
ranging from neurophysiology and psychophysics over computational neuroscience to machine
learning and technical applications.
The research focuses on (i) modeling generative episodic memory in close collaboration with experimental partners, with the goal of modeling experimental data and gaining a deeper understanding of memory processes; (ii) developing a hierarchical model of the visual system that supports a generative memory process. The first project will focus primarily on standard machine learning methods, such as Transformers. The second project aims to develop new methods inspired by the brain.
Scope: part-time (75%)
Duration: fixed-term, 4 Jahre
Start: at the earliest possible date
Apply by: 2026-09-14
Your tasks:
(i) Further development of an existing system model of generative episodic memory in light of various experimental results.
(ii) Development of a brain-inspired hierarchical model of the visual system that supports distributed generative memory processes.
Modeling of experimental data.
Communication with experimental partners.
Publication of results.
Teaching assistance equivalent to 3 SWS, in particular conducting a Python course and supervising student/Bachelor/Master projects.
Your profile:
Requirements:
Very good Master degree in mathematics, computer science, engineering, or a related field.
Interest in interdisciplinary research in the area of neuroscience.
Good programming and mathematical skills.
Basic knowledge in machine learning.
Advantageous:
Experience in modeling.
Experience in interdisciplinary projects.
Programming skills in Python.
We offer:
Challenging and varied tasks with a high level of independence
Collaboration in a committed and appreciative team
Extensive training and professional development opportunities
An interesting interdisciplinary environment in the field of theoretical brain research / machine learning.
Freedom to shape the project yourself.
Infrastructure that facilitates close integration into the institute and the research group.
Opportunity to pursue a Ph.D.
Further information:
The position is salaried and based on the collective agreement of the Länder
(TV-L). If the personal and collective agreement requirements are met, the employee
will receive pay grade E 13 TV-L.
Further information can be found at https://oeffentlicher-dienst.info/ (in German).
The place of work is Ruhr University Bochum.
The load of teaching will be calculated according to § 3 of
Lehrverpflichtungsverordnung (state of North Rhine-Westphalia).
Applications (CV, transcript of records for MSc and Bsc, letter of motivation) should be sent as a single pdf file.
RUB sees itself as a university with an international presence. The campus languages are
German and English. Competence in at least one of the two languages and the willingness
to learn the other are a prerequisite. RUB provides corresponding free courses for
employees.
German language courses are offered by the University Language Center (ZFA) in the field
of German as a Foreign Language
(DaF). https://www.daf.ruhr-uni-bochum.de/daf/mitarbeitende/index.html.en
The Staff Council has the right to participate in all selection interviews. At the
request of a candidate (m/f/x), it will ensure its participation in the entire
procedure. Please contact wpr(a)rub.de.
The Ruhr-Universität Bochum is one of Germany’s leading research universities, addressing
the whole range of academic disciplines. A highly dynamic setting enables researchers and
students to work across the traditional boundaries of academic subjects and faculties. To
create knowledge networks within and beyond the university is Ruhr-Universität Bochum’s
declared aim.
The Ruhr-Universität Bochum stands for diversity and equal opportunities. For this
reason, we favour a working environment composed of heterogeneous teams, and seek to
promote the careers of individuals who are underrepresented in our respective
professional areas. The Ruhr-Universität Bochum expressly requests job applications from
women. In areas in which they are underrepresented they will be given preference in the
case of equivalent qualifications with male candidates. Applications from individuals
with disabilities are most welcome. Contact persons for further information:
Prof. Dr. Laurenz Wiskott Tel.: +49 234 32 27997
Kathleen Schmidt Tel.: +49 234 32 27051
Travel costs, accommodation costs and loss of earnings or other application costs for job
interviews can unfortunately not be reimbursed.
We look forward to receiving your application via our online application portal at
https://jobs.ruhr-uni-bochum.de/en/jobposting/854eabcb1786fa8b53af20c255cd9…
by 2026-09-14. Please make sure to mention the reference number ANR 6046.
Aug. 25, 2026
Spectral analysis in neuroscience course for non-specialists
by Axel Hutt
=============================================================
Course: Spectral analysis of time series in neuroscience: Fundamental methods
=============================================================
The 1-day course addresses fundamental aspects of spectral analysis without
diving much into theory, just from a practical point of view. The aim is to provide a
fundamental understanding of the different techniques out there to avoid mistakes,
artefacts and to be able to choose the best technique for the own data. The course
is planned like an interactive workshop, where we discuss analysis techniques
and clarify open questions and possibly fill gaps of methodology understanding.
The course content addresses non-specialists in mathematical analysis, e.g.
researchers with education in neurobiology, medicine or psychology, but of course
it is also open to theory-oriented researchers who intend to understand the practical
side of spectral analysis in neuroscience. Possible topics to be discussed are, e.g.
* Sampling theory
* Fourier analysis and its possible artefacts, e.g. aliasing, spectral leakage
* Time-frequency analysis (Short-Time Fourier Transform, Wavelet Transform,
Hilbert Transform and Empirical Mode Decomposition) and its limits in applications
* Synchronisation, coherence and Phase-Amplitude Coupling
Event information:
* Location: Bernstein Center Freiburg im Breisgau, Großer Hörsaal, Hansastr. 9a ,
79104 Freiburg, Germany ( [ https://www.bcf.uni-freiburg.de/ | https://www.bcf.uni-freiburg.de ] )
* Date of course and time: Friday, November 27 2026, 9:15-15:45
* Registration : send an email to Axel Hutt (email address: first name.lastname at inria.fr)
* Registration deadline: Monday, November 9 2026
* Registration fee: none, free of charge
The course is supported by the Neurowissenschaftliche Gesellschaft ( [ https://www.nwg-info.de/ | https://www.nwg-info.de/ ] ).
--
Dr. rer. nat. Axel Hutt
Directeur de Recherche
Equipe NECTARINE - INRIA Nancy Center at University of Lorraine
Equipe MLMS - iCube Strasbourg
Bâtiment NextMed , 2, rue Marie Hamm
67000 Strasbourg, France
Team webpage: https://www.inria.fr/fr/nectarine
Aug. 25, 2026
[Hiring] Multiple positions in Italy: NeuroAI Researcher & Biosignal data collection at Silenzio SRL
by Matteo Ferrante
Dear comp-neuro community,
I am writing on behalf of *Silenzio*, a newly founded startup developing a
new generation of human–machine interfaces based on non-invasive neural and
physiological signals. Our goal is to build systems that can decode human
intent more directly than traditional interfaces.
We are currently expanding our team and looking for researchers and
engineers excited about neural decoding, NeuroAI, biosignal processing, and
human–machine interaction. We are hiring for two roles: an *AI Research
Scientist* and a *Biosignal Data Collection Specialist*.
We believe that as machines become increasingly capable, the bandwidth of
human-to-machine communication will become one of the key bottlenecks in
how effectively we interact with them.
Therefore, we are assembling an exceptionally talented international team
and are actively seeking people who are excited to embrace our mission and
help us build what we believe will be the future of interfaces. If this
resonates with you, we invite you to explore our open roles listed below
and consider joining us.
If you are interested, please write to us at *jobs(a)silenzio.io
<jobs(a)silenzio.io>* with a copy of your CV attached, mentioning *“AI
Research Scientist”* or *“Biosignal Data Collection Specialist”* in your
application. We would like to fill these positions on a rolling basis,
starting in *fall 2026*.
*1. AI RESEARCH SCIENTIST*
*Job Responsibilities*
Your core responsibility will be the modeling and software side of
developing a novel human-machine interface device that decodes intent from
neural, bio-, and physiological non-invasive signals.
Concretely, you will:
- Stay current with recent scientific literature in neuroAI
- Implement and adapt existing models
- Design and implement state-of-the-art decoding (and encoding) models
for neural and bio-signals, capable of translating text, actions, and more
broadly "intents" into instructions for machines
- Reason from first principles to design novel solutions to open
problems in human-machine interfaces, including new AI architectures and
pipelines
- Quality-check data and aggregate diverse datasets, both public and
private
- Preprocess neural data—multivariate time-series such as EMG, EEG, and
invasive neural recordings—and standardize it into common formats
- Integrate (or support the integration of) developed models into
proprietary data-acquisition pipelines and decoding systems
- Monitor and track experiments, and write documentation and scientific
reports
- Communicate and collaborate closely with the team, brainstorming ideas
and implementation paths
*Experience*
- MSc in computer science, computational neuroscience, bioengineering,
physics, mathematics, or a related field (PhD preferred)
- A proven track record of designing, building, and shipping deep
learning products—e.g., publications at top-tier venues (NeurIPS, ICLR,
Nature-family journals, or similar) and/or the development and ideally
deployment of AI models in real-world applications
- Strong proficiency in Python and AI-oriented libraries such as
PyTorch, Lightning, Hugging Face, and scikit-learn
- A solid foundation in (bio-)signal processing, algorithms, and
software engineering principles
- Excellent communication skills, fluency in English, rigor, and the
ability to work effectively with an international team
Preferred:
- Experience with EEG, EMG, or invasive neural recordings, and with
data-collection pipelines
- Experience designing, developing, or fine-tuning LLMs or ASR models
- Experience with self-supervised learning and multi-GPU large scale
training of deep learning models
Bonus:
- Basic web-app development skills, and a good understanding of and
taste for design
*Compensation*
Gross annual salary (RAL) of €50k–€80k, determined by your job-related
skills, experience, and relevant education or training.
*Position*
Full-time (40h/week), fully remote within Italy. Occasional on-site
presence or travel is required—for integrating models into production
systems and attending conferences and events.
*2. BIOSIGNAL DATA COLLECTION SPECIALIST*
*Job Responsibilities*
We are looking for people to run EEG/EMG data acquisition end-to-end:
co-designing experimental protocols, recruiting and welcoming participants,
collecting signal data, and preparing it for analysis. We are recruiting
across two distinct tracks—engineering-oriented and participant-facing.
Apply to the one that fits you best.
Concretely, you will:
- Maintain and manage the inventory of all lab equipment, including
tools and consumables
- Co-design experimental paradigms and tasks for data collection
- Handle participant recruitment, onboarding, compliance, briefing, and
data collection
- Set up the recording hardware (EMG, EEG) and manage hardware
maintenance and quality control
- Run and monitor large-scale experiments
*Engineering track:*
- Maintain and improve the data-collection backend and frontend, fixing
bugs and issues as they arise
- Quality-check collected data and perform signal preprocessing
Participant-facing track:
- Monitor the execution of data collection and provide participant
support
- Ensure privacy, ethical, and regulatory compliance
*Experience*
- Prior hands-on experience acquiring EEG and/or EMG data. This is
non-negotiable: we need someone who has already sat with participants,
placed electrodes, monitored signal quality in real time, and troubleshot
acquisition problems as they happen.
- Familiarity with the ethical and regulatory aspects of human-subjects
research (informed consent, ethics-committee procedures)
- Good communication skills and fluency in English
*Engineering track:*
- MSc or (preferred) PhD in Biomedical Engineering, Computer Science,
Computational Neuroscience, or a related field
- Experience working with the APIs provided alongside recording hardware
(e.g., BrainVision, Biosemi, ANT, OpenBCI, or similar)
- Strong Python skills, with the ability to build and maintain
acquisition pipelines in code
- Comfort with scripting, reading hardware documentation, and debugging
and troubleshooting an acquisition setup
*Participant-facing track:*
- MSc in Medicine, Psychology, Biology, or a related field; the key
qualification is hands-on, research-grade data collection
- Exceptional communication skills, empathy, and the ability to design
comfortable, suitable experimental environments
- Experience managing scheduling, communication, and the overall
participant experience
- Basic familiarity with programming fundamentals and core AI
concepts—enough to answer participants' questions about what a study
involves
*Compensation*
Gross annual salary (RAL) of €35k–€50k for full-time, determined by your
job-related skills, experience, and relevant education or training.
*Position*
Full-time or part-time (20–40h/week), on-site in Rome, Italy.
Matteo Ferrante,
Lead AI scientist at Tether Evo & CEO of Silenzio SRL.
Aug. 24, 2026
Job advertisement: Full professor in “Intelligence in Biological and Artificial Systems” (Osnabrück, Germany)
by Prof. Dr. Tim Kietzmann
Dear all,
We are hiring a full professor in "Intelligence in Biological and Artificial Systems" at the institute of Cognitive Science in Osnabrück - Germany's first and largest cognitive science program.
Please forward this information to any suitable candidates, and reach out if you have any questions.
The call is published here:
https://www.uni-osnabrueck.de/en/university/working-at-osnabrueck-universit…
Some more information is provided here: https://www.linkedin.com/feed/update/urn:li:activity:7497392412361711618/
Best wishes
Tim
__________________________________
Prof. Dr. rer. nat. Tim C Kietzmann
Professor for Machine Learning
Institute of Cognitive Science
Osnabrück University
Osnabrück, Germany
Web: https://www.kietzmannlab.org
Email: tim.kietzmann(a)uni-osnabrueck.de
Twitter: @TimKietzmann
Aug. 24, 2026
Postdoc studying episodic memory sampling in Spain
by Raphael Samuel Matthew Kaplan
The Universitat Jaume I's Decision & Memory group in Castelló de la Plana,
Spain led by Prof. Raphael Kaplan is recruiting a junior
postdoctoral researcher(<2 yrs since completing their PhD) to study how the
human brain samples different event details/memories when imagining novel
scenarios. The candidate will also test if episodic sampling processes can
be optimized for learning interventions. Working with Prof. Kaplan and
their team, the candidate will be expected to help collect and analyze
behavioral, fMRI, and/or iEEG experimental data that test these questions.
In parallel, the empirical results will be used to inform quantitative
models investigating the same processes in collaboration with other leading
international laboratories.
The postdoctoral position involves training in behavioral/neuroimaging
experimental design, behavioral and neuroimaging analysis, computational
modeling, machine learning, manuscript preparation, and grant writing
within a highly interdisciplinary research environment. Prof. Kaplan has an
extensive international record of mentorship where they have incorporated
career development opportunities both inside(e.g., fellowship writing,
PhD/MSc trainee supervision, teaching) and outside of academia(e.g., big
data analysis, clinical translation, public sector, user interface(UX)
development) for their trainees.
In exceptional cases, more senior postdoctoral candidates with an extensive
CV and publication record studying related questions will be considered for
a position.
Required Skills:
-Have a PhD in Experimental Psychology, Neuroscience, Cognitive Science,
Engineering. or related field
-Experience analyzing fMRI, intracranial EEG, or model-informed behavioral
data.
-Be able to independently carry out research within defined project
objectives
-Be capable of critical analysis, evaluation, and synthesis of new and
complex ideas
-Be able to communicate and publish research results effectively to
colleagues and broader audiences in English.
-Be able to work collaboratively in interdisciplinary research environments
-Have good programming skills (e.g., Python) and experience with scientific
computing tools
Desired skills:
-Recently received their PhD(after January 1st, 2025)
-First author publications in established cognitive science and
neuroscience journals.
-Experience designing and publishing memory, learning, or decision making
behavioral/neuroimaging research.
-Strong quantitative and statistical background
-Proficiency speaking Spanish and/or Catalan/Valencian
Application details
To apply for the position, interested candidates should send a 1-2
paragraph cover letter explaining why they're suited for the position along
with a CV including name and contact info for 3 references to Prof. Kaplan
at *kaplan(a)uji.es <kaplan(a)uji.es>* by September 15th.
Potential candidates should contact Prof. Kaplan if they have any questions
or need further information.
*Type of contract/Duration of Contract*: Temporary, 2 years(potentially
renewable)
*Job Status:* Full-time, in office
*Hours per week:* 35
*Starting date:* Flexible, ideally between December 2026-March 2027
*Application deadline: *September 15, 2026
*Salary: *30,000€-32,000€/year gross
Recent relevant work by our group includes:
Group website
<https://www.uji.es/serveis/ocit/base/grupsinvestigacio/detall/?urlRedirect=…>
Esposito, M., Abdul, L. S., Ghouse, A., Rodríguez Aramendía, M., & Kaplan,
R. (2025). Flexible hippocampal representation of abstract boundaries
supports memory-guided choice. Nature communications, 16(1), 2377.
Rodríguez Aramendía, M., Esposito, M., & Kaplan, R. (2025). Social
knowledge about others is anchored to self-knowledge in the hippocampal
formation. PLoS Biology, 23(4), e3003050.
Ghouse, A., & Kaplan, R. (2026). The influence of social content on
episodic memory retrieval. Learning & Memory, 33(2-3), a054180
Ghouse, A., & Kaplan, R. (2025). The Relative Contributions of Traits and
Contexts on Social Network Learning. Open Mind, 9, 1506–1527.
--
Raphael Kaplan, PhD
Associate Professor/Profesor Titular de Universidad(TU)
Departament de Psicologia Bàsica, Clínica i Psicobiologia
Universitat Jaume I
kaplan(a)uji.es
Aug. 24, 2026
IOSP 2026 in Leiden: build a community-owned open science system
by Jonathan Starr
The Institute of Open Science Practices <https://iosp.science/> is hosting
its 2026 workshops in Leiden from October 12 to 15, and we'd like you in
the room. *It's free to attend.*
Across the two main working days, the event will establish a
participant-owned data storage consortium, publish datasets, code, and
knowledge objects to it, create our own algorithms that assess the trust
and value of what's published, and assemble community-owned collaboratives
that route funding based on their interpretation of that analysis.
The result will be a fully functional open science system, owned by the
community that builds it, to test, build on, and iterate over the coming
months and years.
The pieces of open science already exist. It's time they were woven into a
coherent system.
You can already see the emerging data network here:
https://www.iosp.science/datanetwork
And the full workshop line-up is here:
https://iosp.science/workshops
Four ways to participate:
1.
*Register.* The room holds 100 people, and last year 425 registered for
an 80-person room, so a registration isn't yet a seat and we confirm by
email. The form asks whether you'd need travel support; say so if you would.
https://www.iosp.science/?signup=participant
2.
*Contribute to the community track.* It runs alongside the main track on
both working days and is an open space for talks, workshops, panels, and
discussions around the four themes.
https://www.iosp.science/submit-community-session
3.
*Building a tool? Submit it to the showcase.* We'll stress-test it and
build on it in Leiden.
https://www.iosp.science/?signup=showcase
4.
*Join the resilient data workshop.* The workshop that opens IOSP 2026
has you stand up an IPFS node and join a member-owned resilient data
consortium. Your node will run either on your own laptop or on a Raspberry
Pi kit you take home. There are only 20 seats and 10 take-home Raspberry Pi
kits. Earlier sign-ups get first consideration if it fills. Signing up for
this workshop also registers you for IOSP 2026.
https://www.iosp.science/resilient-data-signup
And finally, spread the word. Forward this, post the community-track call,
or point a builder at the workshop or showcase.
*Hope to see you in Leiden!*
Jon, Ellie, and the IOSP organizing team
*P.S.* The resilient data consortium needs data worth keeping. If you know
a public dataset that could vanish—a shuttered project's archive, a
retiring server, data whose funding ended—recommend it and we'll consider
adding it to the network.
Recommend a dataset:
https://www.iosp.science/resilient-data-signup
See what the network holds now:
https://www.iosp.science/datanetwork
Aug. 21, 2026
Tenure-Track Assistant Professor in Psychological Science and Neuroscience
by Yuqing Zhu
Dear colleagues,
The Psychological Science and Neuroscience departments at Pomona College in Claremont, CA, USA are seeking candidates with equal dedication to teaching and research in human neuroscience.
The successful candidate will teach two courses per semester and have a productive research program involving undergraduate students, where they will examine the neural mechanisms of psychological phenomena. Computational methods are very welcome.
Pomona College is a selective liberal arts college with close relationships between undergraduate students and faculty. If you have a passion for student mentorship and inclusive excellence in teaching, this would be a great fit for you. Please see the job ad here: https://academicjobsonline.org/ajo/jobs/32248. The position begins July 2027. Applications will be reviewed beginning October 1, 2026.
Thank you for your consideration,
Yuqing
***
Yuqing Zhu, PhD (she/her)
Assistant Professor of Neuroscience
Pomona College | Claremont, CA 91711
Lincoln 3109 | Lab Website<https://zhulab.sites.pomona.edu/>
Aug. 19, 2026