PhD Position in Inspired Neural Networks, Radboud University, Netherlands

Postdoc in Netherlands

PhD Position in Inspired Neural Networks: A unique opportunity to pursue a PhD focused on the dynamics and learning processes in artificial and biological neural networks. This position is ideal for those interested in machine learning, theoretical neuroscience, and interdisciplinary collaboration.

PhD Position in Theory of Learning in Artificial and Biologically Inspired Neural Networks

Designation

PhD Candidate (1.0 FTE)

Research Area

  • Neural Networks
  • Machine Learning
  • Theoretical Neuroscience
  • Computational Efficiency

Location

Radboud University, Nijmegen, Netherlands

Eligibility/Qualification

  • MSc in Physics, Engineering Physics, or Mathematics
  • Knowledge of analytical techniques in modeling complex systems
  • Familiarity with statistical mechanics methods
  • Programming experience (Python, C, Julia)
  • Good command of spoken and written English

Description

The PhD candidate will investigate the learning capabilities of neural circuits, focusing on representation transferability, biological constraints, and learning efficiency. Collaborations with other PhD candidates and international partners will be emphasized, alongside opportunities to supervise Bachelor’s and Master’s students and engage in teaching within the Neurophysics Master’s program.

How to Apply

Interested candidates should submit their applications through the university’s application portal. Address your letter of application to Dr. Alessandro Ingrosso, including the required documents as outlined on the application form.

Last Date for Apply

20 October 2025

Table

DetailsInformation
PositionPhD Candidate
SalaryGross monthly salary: €3,059 – €3,881
Contract duration1.5 years (extension possible based on performance)
Application Deadline20 October 2025
Starting DatePreferably 1 January 2026
Working Hours38 hours per week
Teaching LoadUp to 10% of working time

This is an excellent opportunity for motivated individuals eager to explore innovative research in the intersection of physics, machine learning, and neuroscience.

Link

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