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Relari is a small research and engineering startup building new ways for robots to learn dexterous skills from human biomechanics. You will work directly with the founders, own problems end to end, and test ideas on real robotic systems. This full-time, on-site role is in San Francisco.
You will develop and evaluate learning systems, deploy policies on physical robots, and improve data pipelines and tooling to advance research progress with measurable results.
You will work across the complete learning-to-deployment loop: building representations from human data, training models, evaluating them in simulation and on physical robots, and using failures to decide what to try next. Our research spans vision-language-action models, video models, world models, and policies that learn from biomechanical signals. We are looking for depth in machine learning or robot learning—not expertise in every part of the stack—and the willingness to follow an idea all the way to robot performance.
Relari is a small research and engineering startup developing new ways for robots to learn dexterous skills from human biomechanics. Our founders have AI research roots at MIT and NVIDIA, along with autonomous-vehicle and robotics deployment experience at Pony ai and Dexterity. We are backed by top investors including Y Combinator, General Catalyst, and Soma Capital. You will work directly with the founders, own problems end to end, and test your ideas on real robotic systems. This role is full-time and on‑site in San Francisco.