Sr. ML Engineer, Autonomous Navigation

diligentrobotics· 200-R&D Software
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🌍 Remote📍 Anywhere in the US

About this role

What we’re doing isn’t easy, but nothing worth doing ever is. 

We envision a future powered by robots that work seamlessly with human teams. We build artificial intelligence that enables service robots to collaborate with people and adapt to dynamic human environments. Join our mission-driven team as we build out current and future generations of robots.

As a Sr. ML Engineer, Autonomous Navigation, you will develop learning-based navigation models that enable Moxi to move naturally and safely around people, beds, wheelchairs, and equipment. You’ll train policies using fleet data (imitation learning) and refine behavior with simulation and RL. Your work will directly impact delivery speed, reduced hesitation/deadlocks, and fewer interventions in real hospital deployments.

Responsibilities

  • Develop learning-based navigation models that predict safe, smooth trajectories from sensor inputs and/or perception representations.
  • Build imitation learning pipelines from fleet logs (trajectory extraction, filtering, scenario balancing, evaluation).
  • Implement simulation-based refinement (RL, reward shaping, domain randomization) to improve robustness.
  • Define navigation success metrics aligned to product outcomes.
  • Collaborate with the AI Platform team to integrate learned policies behavior/safety systems and validate on-robot.
  • Build regression tests and scenario replay suites for challenging scenarios.
  • Analyze field behavior, identify failure modes, and close the loop through data curation and retraining.

Basic Qualifications

  • Bachelor’s or Master’s degree in Robotics, Computer Science, Electrical Engineering, or related field (PhD a plus).
  • 5+ years of experience in ML for robotics and/or autonomous vehicles. 
  • Experience with Vision-Language-Action (VLA) models, behavior cloning, and/or transformer/diffusion policies for robotic control.
  • Strong proficiency in PyTorch and experience with sequence models / policy learning.
  • Experience with imitation learning and/or reinforcement learning in robotics or autonomy contexts.

Preferred Qualifications

  • Experience with socially-aware navigation, dynamic obstacle avoidance.
  • Experience with RL at scale (simulation rollouts, distributed training, stability/debugging).
  • Familiarity with ROS navigation stacks and safety constraints for mobile robots.
  • Experience building eval harnesses (offline replay, scenario libraries).

 

Frequently Asked Questions

Is the salary disclosed for the Sr. ML Engineer, Autonomous Navigation position at diligentrobotics?
The salary for this Sr. ML Engineer, Autonomous Navigation role at diligentrobotics is not publicly listed. Click "Apply Now" to learn more about the compensation package on their official careers page.
Is the Sr. ML Engineer, Autonomous Navigation job at diligentrobotics remote?
Yes, this Sr. ML Engineer, Autonomous Navigation position at diligentrobotics is remote, with team members based in Anywhere in the US. You can work from home or anywhere in the supported regions.
Which team or department does the Sr. ML Engineer, Autonomous Navigation at diligentrobotics belong to?
This Sr. ML Engineer, Autonomous Navigation position is part of the 200-R&D Software department at diligentrobotics. See the full job description for more information about the team structure and responsibilities.
How do I apply for the Sr. ML Engineer, Autonomous Navigation position at diligentrobotics?
Click the "Apply Now" button on this page. You will be redirected to diligentrobotics's official application portal hosted on greenhouse where you can submit your application directly.
When was the Sr. ML Engineer, Autonomous Navigation job at diligentrobotics posted?
This Sr. ML Engineer, Autonomous Navigation position at diligentrobotics was posted on Mar 3, 2026. Apply as soon as possible — early applications are often reviewed first.
Sr. ML Engineer, Autonomous Navigation
diligentrobotics
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