Bay Area / Remote; British Columbia (remote); Calgary (remote); Montreal (remote); Toronto (remote); USA (remote) Hybrid $225K – $300K

Serve Robotics is hiring a Lead Engineer, Reinforcement Learning & Scenario Generation

Responsibilities

  • Develop RL algorithms that can help with terrain intelligence and social navigation behaviors.
  • Design, build, and optimize large-scale RL training pipelines (distributed compute, GPU clusters, containerized workflows).
  • Implement curriculum learning, domain randomization, and multi-agent RL strategies.
  • Optimize RL model performance, sample efficiency, and stability across thousands to millions of simulation steps.
  • Build automated tools for experiment orchestration, rollout collection, and metrics visualization.
  • Develop procedural generation pipelines for synthetic environments, agents, and dynamic behaviors.
  • Build tools to generate long-tail scenarios, sudden appearance of objects, traffic behaviors, rare events, and environmental variations.
  • Create systems for configuration, validation, and scoring of generated scenarios.
  • Collaborate with autonomy, ML, and safety teams to map real-world failures into repeatable synthetic simulation cases.
  • Design APIs to connect RL agents, scenario generators, planners, and environment simulators.
  • Debug and optimize simulation performance (real-time speed, determinism, reproducibility).
  • Work with 3D assets, traffic models, mapping systems (e.g., Isaac Sim, CARLA, Unity, Gazebo).
  • Partner with autonomy, data, and modeling teams to define training objectives and scenario requirements.
  • Translate real-world logs and edge cases into parameterized procedural content.
  • Document tools, frameworks, and workflows for internal users.

Requirements

  • Master’s degree in Robotics, AI, Computer Science, Mathematics, or a related field.
  • 7+ years of professional experience with shipping transformer based AI models handling complex navigation or manipulation tasks in AV or robotics solutions at scale in the real world.
  • 3+ years technical leadership/architecture experience
  • Strong experience with Reinforcement Learning (PPO, SAC, A3C, DQN, multi-agent RL, or equivalents).
  • Hands-on experience with distributed training frameworks (Ray RLlib, Accelerate, PyTorch Distributed, Kubernetes, or similar).
  • Proficiency in Python and C++ for performance-critical simulation or graphics pipelines.
  • Experience building or modifying simulation environments (Isaac Sim, Unity, Unreal, CARLA, Gazebo, MuJoCo or custom engines).
  • Experience with procedural generation (noise functions, rule-based systems, agent scripts, behavior trees).
  • Experience with GPU compute, containers, and cloud infrastructure.

Nice to Have

  • Background in generative AI (diffusion, LLMs) for scenario synthesis or environment creation.
  • Experience with traffic simulation (SUMO) or sensor simulation (LiDAR, camera pipelines).
  • Knowledge of CUDA, graphics engines, physics modeling, or rendering.

Work Arrangement

Hybrid

Team

Structure: agile, diverse, and driven

Additional Information

  • Please note: The base salary range listed in this job description reflects compensation for candidates based in the San Francisco Bay Area. We are also open to qualified talent working remotely across the: United States - Base salary range (U.S. – all locations): $190k - $230k USD Canada - Base salary range (Canada - all locations): $160k - $190k CAD
Required Skills
shipping transformer based AI models hanReinforcement Learningdistributed training frameworksPythonC++ for performance-criticalprocedural generationGPU computecontainerscloud infrastructure.traffic simulationCUDAgraphics enginesphysics modelingor rendering. shipping transformer based AI models hanReinforcement Learningdistributed training frameworksPythonC++ for performance-criticalprocedural generationGPU computecontainerscloud infrastructure.traffic simulationCUDAgraphics enginesphysics modelingor rendering.
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About company
Serve Robotics
Serve Robotics is reimagining how things move in cities through autonomous sidewalk robots designed to handle deliveries, reduce street congestion, and support local businesses. The company leverages robotics, machine learning, and computer vision to solve real-world urban logistics problems.
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Job Details
Department Software
Category other
Posted 5 months ago