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全职 Research Associate (SSI) 工作, 薪水, National University Of Singapore Central Region (Singapore) 公司招聘中 - Ricebowl

Undisclosed

Queenstown, Central Region (Singapore)

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工作地点

  • Queenstown Central Region (Singapore) Singapore

职位描述

岗位职责

Job Title: Research Associate (SSI)
University-Level Unit: Smart Systems Institute
Faculty/Department-Level Unit: Smart Systems Institute
Employee Category: Research Staff
Location_ONB: Kent Ridge Campus
Posting Start Date: 04/08/2026

Job Description

The Research Associate will develop the core components of the Data Engine Minimum Viable Product (DEM), an end-to-end system for collecting, curating and leveraging large-scale robot manipulation data for training generalist robot policies.

Specific duties include:

  • Develop automated data quality assessment methods, including uncertainty quantification and out-of-distribution detection, to identify and filter low-quality or unsafe demonstrations.
  • Build and maintain teleoperation and data-collection rigs for real robot platforms, including motion retargeting, inverse kinematics and bimanual/whole-body control.
  • Train, fine-tune and benchmark vision-language-action (VLA) and imitation learning policies on curated datasets; run systematic studies on data scale, mixture and augmentation. Optimise policy inference for real-time deployment on physical robots.
  • Maintain a well-documented, reproducible research codebase and support dataset and software releases.
  • Contribute to publications, technical reports and progress reports to the funding partner; present findings at project and group meetings.
  • Mentor student assistants and interns, and collaborate with project partners and other lab members.

Qualifications and Requirements

  • Master's degree in Electrical/Electronic Engineering, Computer Science, Mechanical Engineering, Robotics or a related discipline.
  • Strong programming ability in Python and C++, with hands-on experience in ROS/ROS2.
  • Practical experience with real robot manipulators, including teleoperation, retargeting, inverse kinematics or optimal/adaptive control.
  • Experience training deep learning models in PyTorch, with working knowledge of imitation learning / behaviour cloning and vision-language-action or large multimodal models.
  • Experience building large-scale data pipelines — dataset curation, standard robot data formats, versioning and quality control — is an advantage.
  • Track record of peer-reviewed publications at robotics or machine learning venues (e.g. CoRL, ICRA, IROS, RSS, NeurIPS) preferred.
  • Good written and spoken English; able to work independently as well as in a collaborative, multi-disciplinary team.

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