Member of Technical Staff - Robotics & Simulation

Embedding VC

$120K — $160K *
Technical Services
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of experience in robotics, embodied AI, or machine learning.
  • Familiarity with robotic simulation platforms such as Isaac Sim, MuJoCo, or Gazebo.
  • Proficiency in Python and robotics tooling for software engineering.
  • Experience with physical robotic systems and deployment of software on them.
  • Strong debugging skills across hardware and machine learning systems.
  • Ability to thrive in a dynamic research and engineering environment.

Responsibilities

  • Benchmark and evaluate robot foundation models in simulated environments.
  • Design frameworks for robotic reasoning, planning, and navigation.
  • Develop world models for robots to predict environment dynamics.
  • Train models using both simulated and real robotics data.
  • Set up and maintain robotic hardware platforms for deployment.
  • Integrate learned policies onto physical robotic systems.
  • Debug issues across hardware, software, and control systems.

Benefits

  • Collaborative, hands-on work in cutting-edge robotics.
  • Opportunity to shape the future of robotics through real-world applications.
  • Exposure to fast-paced research and engineering environments.
  • Direct involvement in deploying transformative robotic systems.
Full Job Description
We are looking for a Member of Technical Staff - Robotics to help build the bridge between simulation, world models, and real-world robotic systems.

This role spans the full robotics stack-from evaluating foundation models and policies in simulation, to training world models, to deploying and operating physical robots. You will work closely with researchers and engineers developing next-generation simulation environments and AI systems, while ensuring those capabilities transfer successfully into real-world robotic platforms.

This is a highly hands-on role combining robotics engineering, machine learning, simulation, and hardware deployment.

What You'll Do
Evaluate Robot Foundation Models & Policies
  • Benchmark and evaluate robot foundation models in simulated environments
  • Design evaluation frameworks for robotic reasoning, planning, manipulation, and navigation
  • Measure generalization, robustness, and task performance across diverse scenarios
  • Build infrastructure for large-scale simulation-based testing and validation
Train World Models for Robotics
  • Develop and train world models that enable robots to understand and predict environment dynamics
  • Build systems that learn from multimodal robot data including vision, depth, state, and actions
  • Improve environment understanding, forecasting, and decision-making capabilities
  • Work closely with simulation and AI teams to advance robotic world modeling systems
Build Real-World Robot Learning Pipelines
  • Collect and curate real-world robotics datasets
  • Train and fine-tune models using both simulated and physical robot data
  • Improve sim-to-real transfer for robotic policies and world models
  • Develop workflows connecting simulation, training infrastructure, and deployed robotic systems
Deploy and Operate Physical Robots
  • Set up, integrate, and maintain robotic hardware platforms
  • Bring learned policies and world models onto real robotic systems
  • Debug hardware, software, sensing, and control issues
  • Develop deployment pipelines for testing, validation, and continuous improvement
  • Work directly with robotic manipulators, mobile robots, sensors, and compute systems
Areas of Focus

Robot Foundation Models
  • Policy evaluation
  • Model benchmarking
  • Simulation-based testing
  • Generalization analysis
  • Performance measurement
World Models
  • Environment modeling
  • Predictive systems
  • Representation learning
  • Multimodal learning
  • Model-based reasoning
Simulation
  • Robotics simulators
  • Digital twins
  • Synthetic environments
  • Sim-to-real transfer
  • Evaluation infrastructure
Robotics Systems
  • Robot setup and integration
  • Sensors and perception systems
  • Robot control
  • Hardware debugging
  • Deployment workflows
What We're Looking For
  • Strong background in robotics, embodied AI, machine learning, or related fields
  • Experience working with physical robotic systems
  • Experience with robotic simulation platforms such as Isaac Sim, MuJoCo, Habitat, Gazebo, or similar
  • Familiarity with robot learning, foundation models, or world models
  • Strong software engineering skills in Python and robotics tooling
  • Experience deploying software onto real robotic hardware
  • Ability to debug across hardware, software, and machine learning systems
  • Comfort working in a fast-moving research and engineering environment
Why This Role Matters

Moonlake's vision extends beyond simulation. We believe the future of robotics will be powered by world models that can learn in simulation and transfer seamlessly to the physical world.

This role sits at the center of that mission. You will help evaluate robotic intelligence in simulation, train the models that power robotic understanding, and deploy those systems onto real robots operating in the physical world.

Your work will directly shape how future robotic systems learn, reason, and act.

We are committed to being an on-site, in-person team currently based in San Francisco.

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