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Agentic Robotics Research Scientist

  • Sharpa
  • Singapore, Singapore
  • SGD 120,000 – SGD 180,000

新加坡全职智能制造 / 工业互联网 / 工业自动化 - 研发

职位描述

Summary of role: This role focuses on developing next-generation agentic robot learning systems that enable robots to reason, plan, learn, and autonomously execute complex, long-horizon tasks in the real world. The researcher will work at the intersection of foundation models, robot learning, planning, world models, and embodied intelligence, translating cutting-edge AI research into robust capabilities on physical robot systems. The role involves both fundamental research and end-to-end system development, with opportunities to publish at top-tier venues and shape the technical direction of agentic robotics. What you'll be doing:

  • Conduct research on agentic robot learning systems that enable robots to reason, plan, learn, and complete long-horizon tasks in real-world environments.
  • Develop methods spanning foundation models, vision-language-action models, task and motion planning, reinforcement learning, imitation learning, world models, memory, and tool use.
  • Explore how autonomous agents can perceive their environment, decompose goals, make decisions, recover from failure, and improve through interaction.
  • Work closely with robotics, computer vision, control, and platform teams to deploy research prototypes on physical robot systems.
  • Design and run experiments in simulation and on real hardware; analyse results and iterate rapidly on system performance and reliability.
  • Contribute to the team’s technical research direction, including identifying promising research questions and turning them into practical capabilities.
  • Publish research outcomes in leading conferences and journals, and contribute to patents or open-source work where appropriate.

职位要求

What we're looking for:

  • PhD in Robotics, Computer Science, Artificial Intelligence, Machine Learning, or a related field.
  • Strong 1st-author publication record at recognised top-tier conferences or journals, such as NeurIPS, ICML, ICLR, CoRL, RSS, TRO, IJRR, ICRA, IROS, CVPR.
  • Strong understanding of modern AI and robotics methods, with experience in one or more areas including embodied AI, reinforcement learning, imitation learning, planning, large language models, vision-language models, world models, or multi-agent systems.
  • Strong programming ability in Python and familiarity with modern machine learning frameworks such as PyTorch, JAX, or TensorFlow.
  • Demonstrated ability to independently drive research from problem definition through experimentation, evaluation, and communication of results.
  • Curious, rigorous, and comfortable working on open-ended research problems in a fast-moving environment. Preferred qualifications:
  • Research experience deploying robot learning systems on physical robots.
  • Research experience with dexterous manipulation and humanoid robotics.
  • Experience integrating LLMs or vision-language models with planning, control, memory, simulation, or real-world execution.
  • Familiarity with robotics simulators such as Isaac Sim, MuJoCo, Habitat, ManiSkill, or equivalent platforms.

投递

Skills

  • Machine Learning
  • Robotics
  • Reinforcement Learning
  • Computer Vision
  • Python
  • PyTorch
  • Research

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