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Lead AI Research Engineer, Embodied Systems
Job in
Milpitas, Santa Clara County, California, 95035, USA
Listed on 2026-07-27
Listing for:
RoboForce
Full Time
position Listed on 2026-07-27
Job specializations:
-
Software Development
Robotics, AI Engineer (Applied/Software)
Job Description & How to Apply Below
Milpitas, CA
Why Robo ForceRobo Force is an AI robotics company developing Physical AI–powered Robo-Labor for dull, dirty, and dangerous work. The company's robots are engineered for demanding industrial environments, with a focus on real-world deployment and scalability.
We are looking for a Lead AI Research Engineer, Embodied Systems to lead and own the engineering of the systems that turn embodied AI into real-world robot behavior. You will be the technical owner and lead for the full embodied systems stack — the onboard AI system, the data collection system, the teleoperation systems, and the on-robot reinforcement learning system — driving the direction hands-on and closing the loop between data, models, and action in the physical world.
Responsibilities- Lead and own, from the engineering side, the embodied systems that power Robo Force's data flywheel — the onboard AI (inference) system, the data collection system, the teleoperation systems and the on-robot reinforcement learning system.
- Set the technical direction and architecture for how learned models run, are evaluated, and improve on real robots.
- Deliver these systems end-to-end on physical robots — from bring-up through reliable, real-time operation in demanding industrial environments.
- Own on-robot deployment and closed-loop evaluation of policies, turning real-world performance into measurable improvements.
- Partner with and influence the robotics software team and the ML research team to align interfaces and priorities across the stack.
- Grow the direction — mentor engineers and raise the technical bar for embodied systems work.
- Bachelor's or Master's degree in Computer Science, Robotics, Electrical Engineering, or related field with significant relevant experience, or a PhD degree.
- Track record of leading complex robotic or embodied systems end-to-end and setting technical direction for other engineers.
- Strong proficiency in both C++ and Python, with solid systems programming and real-time / performance-critical engineering skills.
- Hands-on experience with ROS/ROS2 and robot middleware, including real-time integration of sensing, control, and compute.
- Experience integrating and deploying ML models/policies into real-time robotic or autonomous systems — system ownership and building, rather than model training or research.
- Requires 5 days/week in-office collaboration with the teams.
- Experience with teleoperation and data-collection systems (e.g., VR, UR, GELLO, UMI) and the challenges of collecting high-quality robot data at scale.
- Experience with on-robot reinforcement learning or closed-loop policy-improvement systems.
- Familiarity with robot learning policies (VLA, imitation learning, behavior cloning) and their real-time inference and control-integration characteristics.
- Familiarity with manipulation stacks, whole-body control interfaces, or real-time middleware tuning.
- Competitive stock options/equity programs.
- Health, dental, and vision insurance, 401(k) plan.
- Visa sponsorship and green card support for qualified candidates.
- Lunches and dinners, a fully stocked kitchen, and regular team-building events.
- Competitive stock options/equity programs.
- Health, dental, and vision insurance, 401(k) plan.
- Visa sponsorship and green card support for qualified candidates.
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