Machine Learning Engineer, VLA & RL - Senior

Cyberwave S.p.a.

Milano

On-site

EUR 63,000 - 77,000

Full time

14 days+
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Benefits offered by this job

Competitive compensation
Access to real robots
Meaningful equity

Job summary

Cyberwave S.p.a. is seeking a Machine Learning Engineer with a focus on vision-language-action (VLA) models and reinforcement learning. This role involves training models for robotic systems and requires 3+ years of experience in machine learning, particularly for robotics and embodied AI.

The successful candidate will work with various hardware platforms and collaborate closely with teams on deploying solutions. Competitive compensation and the opportunity for hands-on work in Milan or Zurich are offered.

Qualifications

  • 3+ years of hands-on experience building ML systems for robotics.
  • Strong experience with reinforcement learning algorithms such as PPO, SAC.
  • Experience training policies in simulation environments.

Responsibilities

  • Train and evaluate VLA and RL policies for robotic tasks.
  • Build data pipelines for language-conditioned robot control.
  • Collaborate with teams to deploy learned policies.

Skills

Machine Learning systems for robotics
Vision-language-action models
Reinforcement learning algorithms
Python
PyTorch

Tools

MuJoCo
PyBullet
Isaac Sim/Lab

Job description

Overview

Machine Learning Engineer, VLA & RL - Senior. Full-time. TC starting at 70k. Posted 1 day ago.

Build vision-language-action and reinforcement learning models for real-world robotic systems. Train policies that generalize across embodiments, tasks, simulators, and physical deployments.

About Cyberwave

Cyberwave is building the infrastructure layer for intelligent machines - making robotics as accessible, scalable, and programmable as cloud software. Our platform connects simulation, digital twins, edge devices, cloud training, and real robots into one operating layer for robotics teams.

Role

We\'re looking for a Machine Learning Engineer focused on vision-language-action (VLA) models, reinforcement learning, and cross-embodiment transfer. You\'ll work on models that turn perception, language, and task context into robot actions across different hardware platforms: arms, mobile robots, drones, and other industrial systems.

This is a hands-on applied ML role. We care about candidates who have trained and evaluated real policies, debugged failures across simulation and hardware, and understand the gap between promising demos and reliable deployment. You\'ll work closely with robotics, simulation, infrastructure, and product teams to build learning systems that can be trained at scale, evaluated rigorously, and deployed safely on real robots.

This role is based in Milan or Zurich, with regular access to real robots, simulation infrastructure, and customer-facing deployment scenarios.

Work Style

Hands-on applied ML for embodied AI, simulation, and real robot deployments

Requirements
  • 3+ years of hands-on experience building ML systems for robotics, embodied AI, reinforcement learning, or visuomotor control
  • Specific experience with vision-language-action (VLA) models, robotic foundation models, imitation learning, behavior cloning, or language-conditioned policies
  • Strong experience with reinforcement learning algorithms and workflows, such as PPO, SAC, offline RL, RL fine-tuning, reward modeling, or policy evaluation
  • Practical experience with cross-embodiment transfer, including transferring policies across robot morphologies, sensors, action spaces, simulators, or real hardware platforms
  • Experience training and evaluating policies in simulation environments such as MuJoCo, Isaac Sim/Lab, PyBullet, ManiSkill, robosuite, or similar robotics simulators
  • Strong Python and PyTorch skills, with good software engineering habits for reproducible training, experiment tracking, datasets, and evaluation
  • Comfort debugging model failures across perception, action representations, control loops, latency, data quality, and hardware behavior
  • Comfortable working in English in an international, fast-moving environment
Responsibilities
  • Train and evaluate VLA, imitation learning, and reinforcement learning policies for real robotic tasks
  • Build model and data pipelines for language-conditioned robot control, visuomotor policies, trajectory datasets, and action representations
  • Design experiments for cross-embodiment transfer across arms, mobile robots, drones, simulated systems, and physical hardware
  • Improve policy robustness through simulation, domain randomization, dataset curation, offline evaluation, online rollouts, and sim-to-real validation
  • Collaborate with robotics and infrastructure teams to deploy learned policies into Cyberwave\'s edge, simulation, and digital twin stack
  • Create rigorous evaluation suites for task success, generalization, safety, latency, and real-world reliability
  • Stay close to frontier research in embodied AI while turning useful ideas into production-quality systems
What We Offer

Work on frontier embodied AI with direct paths to real robot deployment

Access to real robots, simulation infrastructure, and robotics datasets

Competitive compensation and meaningful equity

Join a high-talent team of repeat founders, ex-Google engineers, and PhDs

In-person collaboration in Milan and Zurich with real hardware and high ownership

Ready to Join Our Team?

We\'d love to hear from you! When applying, please include:

  • Your Github or LinkedIn profile
  • 2-3 lines about why you would like to join Cyberwave

Tell us what excites you about this opportunity and how you can contribute to our mission!

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