Internship, Robot Learning Research

Groupe-Ebra-1

Greater London

On-site

GBP 20,000 - 27,000

Full time

7 days ago
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Benefits offered by this job

Breakfast provided
Lunch provided
Snacks in-office
Access to founding leadership
Challenging, impactful projects

Job summary

Humanoid in London is seeking interns to work on real-world robotic systems across reinforcement learning, world models, pretraining, and inference& optimisation. You will collaborate with researchers and engineers to train policies in simulation and deploy them on real robots.

The internship is full-time (5 days/week) based in the London office, with duration from 12 to 24 weeks and start date flexible. Compensation is competitive with perks and growth opportunities.

Qualifications

  • Pursuing or holding an advanced degree in CS/ML/robotics.
  • Strong foundation in machine learning and Python.
  • Hands-on experience with PyTorch or JAX.

Responsibilities

  • Train RL policies and manipulation tasks in real-world robotic setups.
  • Develop world models and generative video models.
  • Experiment with sim-to-real transfer for policies.

Skills

Python
PyTorch
JAX
Reinforcement Learning
Robotics
Research

Education

Master's or PhD in Computer Science or related field

Tools

MuJoCo
Isaac Sim
TensorRT

Job description

Here at Humanoid, we believe in a future where robots amplify human potential. That’s why we’ve set out on a mission to build the world’s most capable, commercially-scalable, and safe humanoid robots. We’re bringing that mission to life with HMND‑01 - our rapidly developed humanoid platform being deployed in real industrial environments - and we’re growing the team to take it even further.

Our Mission

We're building software systems that enable robots to operate effectively in the real world, expanding human capability and redefining how work gets done.

The Opportunity

We're looking for interns who are curious, proactive, and excited to work on real-world robotic systems.

Depending on your interests and skills, you will be able to work across our research stack: reinforcement learning, world models, pretraining, and inference & optimisation. That spans everything from training policies in simulation, through building the generative models that let robots predict their world, to squeezing models onto real-time edge compute. You'll collaborate closely with the team to find where you can have the most impact, and we're looking for people who are excited to dive into unfamiliar areas and learn quickly.

This is a full-time internship (5 days per week), based in our London office, where you'll contribute to real systems from early on with guidance and support from experienced researchers and engineers.

Duration: 12 to 24 weeks | Start date: Flexible | Compensation: Competitive pay and perks

What you might work on

Reinforcement Learning

  • Train language-vision conditioned manipulation policies via RL in the real world

  • Construct challenging and diverse suites of manipulation tasks and RL models in simulation (Isaac Sim, MuJoCo)

  • Experiment with ways of bringing policies trained in simulation to the real world

World Models

  • Action-conditioned video prediction and dynamics models that stay physically consistent over long horizons

  • Use world models as learned simulators: score candidate policies offline and generate synthetic rollouts for training

  • Build fidelity metrics that quantify where the world model can be trusted

Pre- and post-training

  • In-context learning

  • Short and long term memory

  • Post-training VLA models on specific production-grade use cases

  • Different data modalities, closing embodiment gap between human and robot data, data diversity and attribution.

Inference & Optimisation

  • Optimise models for real-time edge inference on robot hardware: profiling, quantisation, and latency/throughput trade-offs

  • Improve training and data-loading performance across distributed GPU infrastructure

What We're Looking For
  • Candidates pursuing or holding a master’s or PhD in computer science, machine learning, robotics, or a related field.

  • Strong foundations in machine learning; strong Python and hands-on experience with PyTorch or JAX.

  • Interest in one or more of: reinforcement learning, world models and generative video, VLA/multimodal models, or ML systems and inference optimisation.

  • Experience running experiments and interpreting results with rigour.

  • Ability to take ownership and iterate with guidance.

  • Strong problem-solving skills and attention to detail.

  • Fast learner, comfortable in a research-driven, fast-moving environment.

What We Offer
  • Free daily breakfast, catered lunch, and snacks in-office.

  • Work at the frontier - collaborate daily with world-class engineers, researchers, and product experts building the next generation of AI and humanoid robotics.

  • Real ownership - direct access to founding leadership, meaningful input on product direction, and the ability to drive key initiatives from day one.

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