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Research Assistant (Multi-Agent Strategy Learning)

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National University of Singapore (NUS)

Kent Ridge Campus

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Research Assistant (Multi-Agent Strategy Learning)

Research Assistant

2026-08-07

Location

Kent Ridge Campus

National University of Singapore

Type

Full-time

Required Qualifications

Python programming
PyTorch / deep learning
Reinforcement learning
Robotics / control systems
Master's background

Research Areas

Multi-agent systems
Collaborative robotics
UAV control
Reinforcement learning
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Research Assistant (Multi-Agent Strategy Learning)

Job Description

This position involves working on a project related to the coordination of large teams of autonomous robots (e.g., UAVs) in mixed cooperative-competitive environments. The Research Assistant will support the development, simulation, testing, and implementation of collaborative control algorithms for multi-agent robotic systems, under the guidance of the PI and senior researchers. The work will first focus on simulation studies and may later involve hardware experiments with project partners. The role provides an opportunity to work with the PI’s team at the National University of Singapore, as well as industrial, government, and overseas collaborators. The successful candidate is expected to be motivated, responsible, and willing to learn, with a Master’s-level background in robotics, control, computer science, electrical engineering, mechanical engineering, or related disciplines. Prior exposure to multi-agent systems, robotic control, reinforcement learning, or autonomous aerial vehicles would be an advantage.

The main research tasks for the project include, but are not limited to:

  • Assisting in the development and evaluation of conventional and learning-based controllers for collaborative control of multi-agent robotic systems in mixed cooperative-competitive environments.
  • Implementing and testing control algorithms in simulation environments, with possible support for hardware experiments on robotic or UAV platforms.

Qualifications

  • Good programming skills in Python.
  • Basic experience with PyTorch, deep learning, reinforcement learning, or related machine learning tools.
  • Basic understanding of robotics, control systems, machine learning, or multi-agent systems.
  • Experience with robotic simulation environments or aerial simulators would be an advantage.
  • Prior exposure to UAVs, autonomous robots, or hardware experiments would be beneficial but is not required.
  • Ability to read research papers and summarize key technical ideas.
  • Good written and spoken communication skills.
  • Ability to work independently on assigned tasks while collaborating effectively within a research team.

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Frequently Asked Questions

🎓What qualifications are required for the NUS Research Assistant role?

Applicants need a Master's-level background in robotics, control, computer science, electrical engineering or mechanical engineering. Strong Python skills, basic experience with PyTorch, deep learning or reinforcement learning, and understanding of robotics or multi-agent systems are essential. Research Assistant jobs at NUS often prefer prior exposure to simulation environments.

🤖What research will the Research Assistant perform?

The role focuses on multi-agent robotic systems in mixed cooperative-competitive environments. Key tasks include developing conventional and learning-based controllers, implementing algorithms in simulation, and supporting hardware experiments with UAV platforms. Higher-ed faculty and research roles at NUS often involve similar collaborative control projects.

📅Is this a full-time or contract position at NUS?

This is a full-time Research Assistant position based at the Kent Ridge Campus. The role supports a specific project under the PI and senior researchers with potential for hardware collaboration with industrial and government partners.

📝How do I apply for the Research Assistant (Multi-Agent Strategy Learning) position?

Submit your application before the 2026-08-07 deadline via the official NUS portal. Highlight relevant experience in reinforcement learning, simulation tools, and academic writing. Strong communication skills and the ability to work independently are highly valued.

🚀What advantages does this NUS role offer for career development?

The position provides direct access to the PI’s team at NUS plus industrial, government and overseas collaborators. It is ideal for building expertise in multi-agent systems and robotic control before pursuing a PhD or advanced research roles. Postdoc and research pathways often follow similar NUS assistant positions.

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