Research Fellow (Robot Learning & Manipulation)

Nanyang Technological University, Singapore (NTU Singapore)

Singapore

On-site

SGD 70,000 - 110,000

Full time

11 days ago
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Job summary

NTU Singapore's SHaRE@NTU Corporate Laboratory seeks a Research Fellow with a strong robotics learning background to advance visuomotor manipulation policies for humanoid robots, emphasizing real-robot deployment.

You will lead research from problem formulation to validation on real platforms, supervise researchers, and collaborate with perception, controls, and hardware teams to integrate learned policies into the autonomy stack, with a focus on robust, publishable outcomes.

Qualifications

  • PhD in Robotics, Computer Science, Electrical Engineering, or related field.
  • Demonstrated publication record in robot learning, manipulation, embodied AI, or related areas (CoRL, RSS, ICRA, IROS, NeurIPS, CVPR).
  • Experience developing and deploying robot learning systems on real robots.

Responsibilities

  • Lead the research and development of learning-based visuomotor policies for humanoid robot manipulation, from problem formulation to real-world validation.
  • Define research directions and technical roadmaps for manipulation capabilities such as grasping, object reorientation, bimanual manipulation, and assembly.
  • Advance techniques including behavior cloning, reinforcement learning, and VLA-based reasoning, with a focus on novel contributions and publishable outcomes.
  • Develop principled approaches to robustness challenges such as sensor noise, partial observability, contact dynamics, and environment variability.
  • Oversee the research pipeline from data collection strategy and model training to evaluation methodology and deployment.
  • Manage project milestones, deliverables, and timelines; coordinate with collaborators and stakeholders, and report progress to the PI.
  • Supervise and mentor research associates, engineers, and PhD students working on the project.
  • Collaborate with perception, controls, systems, and hardware teams to guide integration of learned policies into the full autonomy stack.
  • Evaluate tradeoffs between learning-based and classical approaches and make principled architectural and design decisions.
  • Lead the preparation of publications, technical reports, and grant/project documentation.

Skills

Robot learning
Visuomotor control
Reinforcement learning
Behavior cloning
Python
PyTorch
Mentoring

Education

PhD in Robotics, Computer Science, Electrical Engineering, or related field

Tools

PyTorch
ROS

Job description

SHARE@NTU Corporate Laboratory focuses on the development of key technologies for humanoid robotics, aimed at enabling intelligent services, industrial assistance, and human-centric applications. The research areas include multimodal sensing, artificial intelligence, environmental perception and situational awareness, as well as real-time motion planning and decision-making, allowing humanoid robots to operate safely and efficiently in complex and dynamic environments. Through the development of advanced humanoid robotic platforms, SHARE@NTU Lab seeks to address the growing global demand for automation while cultivating the next generation of local talent in robotics, artificial intelligence, and intelligent sensing technologies.

Our Lab aims to hire a Research Fellow with strong robotics learning background to help develop and improve our visuomotor manipulation policies, with a heavy emphasis on real-robot deployment.

Key Responsibilities:
  • Lead the research and development of learning-based visuomotor policies for humanoid robot manipulation, from problem formulation to real-world validation
  • Define research directions and technical roadmaps for manipulation capabilities such as grasping, object reorientation, bimanual manipulation, and assembly
  • Advance techniques including behavior cloning, reinforcement learning, and VLA-based reasoning, with a focus on novel contributions and publishable outcomes
  • Develop principled approaches to robustness challenges such as sensor noise, partial observability, contact dynamics, and environment variability
  • Oversee the research pipeline from data collection strategy and model training to evaluation methodology and deployment
  • Manage project milestones, deliverables, and timelines; coordinate with collaborators and stakeholders, and report progress to the PI
  • Supervise and mentor research associates, engineers, and PhD students working on the project
  • Collaborate with perception, controls, systems, and hardware teams to guide integration of learned policies into the full autonomy stack
  • Evaluate tradeoffs between learning-based and classical approaches and make principled architectural and design decisions
  • Lead the preparation of publications, technical reports, and grant/project documentation
Job Requirements:
  • PhD in Robotics, Computer Science, Electrical Engineering, or a related field
  • Strong publication record in robot learning, manipulation, embodied AI, or related areas (e.g., CoRL, RSS, ICRA, IROS, NeurIPS, CVPR)
  • Demonstrated experience developing and deploying robot learning systems on real robots
  • Deep expertise in robot manipulation and visuomotor control
  • Strong command of behavior cloning, reinforcement learning, or related learning-based manipulation methods
  • Proficiency in Python and modern deep learning frameworks (e.g., PyTorch)
  • Proven ability to independently define research problems, design experiments, and drive projects to completion
  • Experience supervising or mentoring junior researchers or students
Bonus Qualifications
  • Prior work on humanoids or highly dexterous robotic platforms
  • Experience transitioning research prototypes into commercial or production robotic systems
  • Track record of successful collaboration with industry partners
  • Passion for building autonomous humanoid robots that operate in the real world

We regret that only shortlisted candidates will be notified.

Hiring Institution: NTU

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