Staff Reinforcement Learning Research Engineer

Posted 25 Days Ago
Be an Early Applicant
Post Office, Fatepura, Dahod, Gujarat, IND
In-Office
155K-200K Annually
Mid level
Robotics • Software
The Role
As a Staff Reinforcement Learning Research Engineer, you'll enhance RL frameworks for robots, focusing on simulation and deployment while collaborating with a skilled team.
Summary Generated by Built In

Do you want to build the scalable reinforcement learning framework that powers the next generation of humanoid and quadruped robots? As a Staff RL Research Engineer, you'll own the RL stack, including massively parallel simulation, domain randomization, policy optimization, and on-robot deployment. Your job is to make the pipeline fast, reliable, and reproducible. You'll work alongside world-class engineers and scientists pushing the boundaries of whole-body control and dexterous manipulation.

In this role, you will:

  • Implement on-policy and off-policy learning algorithms

  • Scale GPU-accelerated simulation to generate millions of samples per second

  • Crack sim-to-real to produce policies that transfer to the physical robot

  • Integrate RL with VLAs to fine-tune and distill large multimodal policies

  • Make deployment easy, fast, and reproducible

  • Build visualization tools that enable data-driven research

Required Qualifications

  • MS with 3+ years of experience, or PhD, in ML, Robotics, or a related field

  • Deployed policies on physical robots with attention to latency, robustness, and safety

  • Expertise with RL toolboxes (RSL-RL, CleanRL, RLlib, Stable Baselines)

  • Expertise with simulation and rendering tooling (Isaac Lab, MuJoCo, MjWarp, MjLab)

  • Proficient in PyTorch and/or JAX, plus inference runtimes (ONNX, Triton, TensorRT)

  • Solid software fundamentals: Bazel, monorepos, Docker, CI/CD

The ideal candidate has:

  • Built production-grade RL training pipelines

  • Deep knowledge of GPU-accelerated physics simulation

  • Applied RL to humanoid locomotion, whole-body control, or dexterous manipulation

  • Worked on sim-to-real transfer, domain randomization, or system identification

  • Experience with heterogeneous compute clusters and Kubernetes

Why join us? 

  • Ownership of the company wide RL tools powering all of our robots

  • Direct access to the compute infrastructure to run large-scale experiments

  • The chance to help define what’s possible in real-world robotics

The salary or hourly pay range for this position will be clearly stated in the job posting as required by Massachusetts law. The base pay range for this position is between $155,284.34- $200,000. Base pay will depend on multiple individualized factors including, but not limited to internal equity, job related knowledge, skills and experience. This range represents a good faith estimate of compensation at the time of posting. Boston Dynamics offers a generous Benefits package including medical, dental vision, 401(k), paid time off and an annual bonus structure. Additional details regarding these benefit plans will be provided if an employee receives an offer for employment.

Skills Required

  • MS with 3+ years of experience, or PhD, in ML, Robotics, or a related field
  • Deployed policies on physical robots with attention to latency, robustness, and safety
  • Expertise with RL toolboxes (RSL-RL, CleanRL, RLlib, Stable Baselines)
  • Expertise with simulation and rendering tooling (Isaac Lab, MuJoCo, MjWarp, MjLab)
  • Proficient in PyTorch and/or JAX, plus inference runtimes (ONNX, Triton, TensorRT)
  • Solid software fundamentals: Bazel, monorepos, Docker, CI/CD
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The Company
HQ: Waltham, ME
642 Employees
Year Founded: 1992

What We Do

Boston Dynamics builds advanced mobile manipulation robots with remarkable mobility, dexterity perception and agility. We use sensor-based controls and computation to unlock the potential of complex mechanisms. Our world-class development teams develop prototypes for wild new concepts, do build-test-build engineering and field testing and transform successful designs into robot products. Our goal is to change your idea of what robots can do.

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