Machine Learning Engineer: Imitation and Reinforcement Learning for Robotics

San Francisco, CA, US Mid Level AI/ML Engineer

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Skills & Technologies

PyTorchPythonRust

About This Role

We’re looking for a Machine Learning Engineer with a focus on behavior learning, specifically data-driven behavior policies and robust data infrastructure. In this role, you'll be responsible for developing and scaling state-of-the-art learning architectures, while also building the data systems that make these models reliable, scalable, and reproducible in production.

What you’ll do:

  • Design, train, validate, and launch models for behavior cloning and reinforcement learning
  • Build and maintain data ingestion, labeling, and management pipelines to ensure high-quality training datasets
  • Build metrics to evaluate model performance in open loop, simulation, and in the real world
  • Collaborate with simulation, systems, and infrastructure teams to integrate ML models into real-world autonomous systems
  • Deploy and debug these models in real-world environments, addressing practical issues such as latency, hardware constraints, and system integration

What we’re looking for:

  • Practical experience applying machine learning with deep learning frameworks, such as PyTorch, to solve real-world problems
  • Proficiency in Python and comfort with at least one systems language (e.g., C++, Rust)
  • Familiarity with recent literature and methods in learned behavior policies
  • Practical experience in behavior cloning and/or reinforcement learning
  • Bonus: Experience with diffusion policies, Vision-Language-Action (VLA) models, or related technologies
  • Bonus: Published work in conferences such as ICRA, IROS, CoRL, CVPR, ECCV, ICCV, ICML, NeurIPS, …

Role Details

Title Machine Learning Engineer: Imitation and Reinforcement Learning for Robotics
Location San Francisco, CA, US
Category AI/ML Engineer
Experience Mid Level
Salary Not disclosed
Remote No

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