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Senior Reinforcement Learning Engineer
Job in
Zürich, 8058, Zurich, Kanton Zürich, Switzerland
Listed on 2026-07-14
Listing for:
NextGenEnergyJobs
Full Time
position Listed on 2026-07-14
Job specializations:
-
Software Development
Robotics, Machine Learning/ ML Engineer
Job Description & How to Apply Below
ANYbotics is a fast-growing tech company dedicated to shaping the future of mobile robotics across multiple industries.
Key Responsibilities- Lead the design, training, and deployment of reinforcement learning policies for robot motion — bridging the gap from simulation to reliable real-world performance
- Provide senior technical guidance on RL and learning-based control across the team, mentoring engineers and establishing best practices for policy development workflows
- Own and evolve the RL training infrastructure and sim-to-real pipeline, ensuring reproducibility, scalability, and fast iteration cycles
- Shape the technical vision for internal ML tooling and experiment management (e.g. training dashboards, automated evaluation pipelines), driving efficiency and rigour across the team's learning workflows
- Collaborate closely with cross-functional stakeholders to identify how to expand the robot's autonomous operational envelope
- Triage field issues related to locomotion, recognise failure patterns, and rapidly improve policy robustness based on real deployment data
- Write, deploy, and maintain efficient Python and C++ software for the learning and locomotion stack
- PhD in robotics, machine learning, computer science or a related field with a strong focus on reinforcement learning; alternatively, an equivalent track record of RL research and deployment in robotics Or
- Master's degree from a top-tier technical university (e.g. ETH Zurich, EPFL) in robotics, machine learning, computer science or related field and 5+ years of professional experience
- Proven track record of shipping ML models to the field and maintaining those solutions over time
- Solid grounding in robot control fundamentals and autonomous systems, including: motion control, state estimation, path planning and actuation
- Experience using robotic simulation tools such as Gazebo or Isaac Sim
- Strong understanding of sim-to-real transfer, domain randomisation, reward shaping, and policy robustness techniques
- Proficiency in Python and modern ML frameworks (PyTorch); working knowledge of C++
- Strong knowledge of Linux systems and middleware frameworks for integrating learned components into a larger software stack
- Pragmatic and solution-oriented mindset — comfortable balancing research exploration with production delivery
- Excellent communication skills in English
Position Requirements
10+ Years
work experience
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