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ML Engineer – Robotics

remote

About this role

ABOUT THE ROLE We are a Series A AI/ML data and services company building highly accurate AI through high-quality training data, robust reinforcement learning environments, and intelligent agents for frontier labs and enterprises. Our work spans the full AI lifecycle — from data labeling and post-training to evaluation and deployment — with a strong focus on physical intelligence and embodied AI. As an ML Engineer – Robotics, you will design, train, and deploy intelligent models that power autonomous systems at the intersection of machine learning, control systems, and real-world robotics.

You will build perception, planning, and decision-making pipelines that make machines truly adaptive, collaborating with world-class AI teams to solve hard, interdisciplinary problems that combine data-driven learning with real-world constraints. WHAT YOU'LL DO - Develop and optimize ML models for perception, motion planning, and control. - Build computer vision and sensor fusion systems using camera, LiDAR, and IMU data.

- Integrate learning-based models with robotics software stacks (ROS/ROS2). - Design pipelines for data collection, simulation, and reinforcement learning. - Collaborate with robotics and hardware engineers to deploy models in live environments. - Continuously evaluate model performance and robustness across diverse real-world scenarios. WHAT WE'RE LOOKING FOR Required: - 3–8 years of professional experience in Machine Learning, Robotics, or Computer Vision.

- Proficiency in Python and C++ for robotics and ML development. - Hands-on experience with PyTorch and/or TensorFlow for model development. - Proficiency with ROS or ROS2 and integrating ML models into robotics software stacks. - Experience with robotics simulation and benchmarking tools (Gazebo, Isaac Sim, CARLA, MuJoCo, PyBullet). - Experience designing and deploying perception, motion planning, and control pipelines for autonomous systems.

- Experience with sensor fusion using camera, LiDAR, and IMU data. - Experience with data collection pipelines, simulation environments, and reinforcement learning workflows. - Strong ability to evaluate model performance and robustness across diverse deployments. Nice to Have: - Familiarity with localization, SLAM, or adaptive control techniques. - Experience with imitation learning or model-based reinforcement learning.

- Background deploying ML models in real-time or embedded environments. Eligibility: Candidates must be eligible to work in the United States without company visa sponsorship. No visa sponsorship is available for this role. COMPENSATION & BENEFITS - Salary range: $220,000 – $300,000 USD annually, depending on experience. LOCATION This is a fully on-site role based in Mountain View, CA. Local candidates or those willing to relocate are preferred; remote work arrangements are not available for this position.

Source listing: ashby_clera