Autonomy Engineer - VLA Pre-training

Groupe-Ebra-1

San Diego (CA)

Presencial

USD 180 000 - 300 000

Tempo integral

Há 5 dias
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Vantagens oferecidas por esta oferta de emprego

Health coverage in US
PTO 23 days
401(k) with match
Equity included
Free daily catered lunch
Collaboration with top engineers
Impactful product ownership

Resumo da oferta

Humanoid is seeking an Autonomy Engineer focused on VLA pre-training to develop capable policies by pre-training base models on diverse trajectories and fine-tuning for specific tasks. You will shape data collection, generate synthetic data, and push toward scalable, safe humanoid AI.

This role emphasizes deep learning, with potential exposure to robotics and a fast-growing team collaborating across data, ML, and platform groups. California-based, in-office work, with competitive compensation.

Qualificações

  • 3+ years building deep‑learning systems (industry or research).
  • Hands‑on with LLMs, VLMs, or image/video generative models — architecture, training and inference.
  • Experience with deep learning infrastructure: streaming datasets, checkpointing and state management, distributed training strategies.
  • Strong Python + PyTorch/JAX; able to profile, debug numerics, and write maintainable research code.
  • Familiarity with modern software engineering practices.

Responsabilidades

  • Post-train policies via behavior cloning and RL; own the full loop from data to deployment.
  • Collaborate with Data Collection to specify good data and coverage.
  • Work with external partners to secure high‑quality pretraining data.
  • Run pre/mid/post‑training on VLA stack and explore new modalities/architectures.
  • Build and maintain pipelines: ingest synthetic data, label, curate datasets, surface failures for retraining.
  • Coordinate with MLOps & Data Platform to scale distributed training and optimize edge inference.

Conhecimentos

Deep learning systems
LLMs
VLMs
Image/video generative models
Python
PyTorch/JAX
Software engineering practices
Experiment documentation

Ferramentas

Distributed training
Checkpointing/state management

Descrição da oferta de emprego

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.

About the Role

As an Autonomy Engineer focused in VLA Pre-training, you will work on all aspects of training capable policies. You'll pre-train base models on a diverse, multi-embodiment corpus of trajectories, fine-tune policies to excel at specific tasks, shape data collection processes, and explore effective ways to generate and use synthetic data.

This is primarily a deep learning role, so we're looking for experience solving real‑world problems with modern neural networks. Robotics experience isn't strictly required, but if you're coming from outside the field, be prepared to get up to speed on a new domain quickly.

What You'll Do
  • Post-train policies via behavior cloning and RL; own the full loop from data to deployment.

  • Partner with the Data Collection team to drive collecting new data: specify what good data looks like, identify failure modes, ensure diversity and coverage.

  • Work closely with external partners to ensure steady supply of high-quality pretraining-scale data.

  • Run pre‑/mid‑/post‑training on VLA stack; explore new modalities and architecture changes.

  • Build and maintain continuous pipelines: ingest synthetic data and teleop logs, version them, apply weak‑supervision labelling, curate balanced datasets, and auto‑surface fresh failure cases into retraining.

  • Work with MLOps & Data Platform teams to scale distributed training and optimize models for real‑time edge inference.

What We're Looking For
  • 3+ years building deep‑learning systems (industry or research) with shipped models or published artifacts to show for it.

  • Deep hands‑on experience with at least one of: LLMs, VLMs, or image/video generative models — architecture, training, and inference.

  • Experience with deep learning infrastructure: streaming datasets, checkpointing & state management, distributed training strategies.

  • Strong Python + PyTorch/JAX; you can profile, debug numerics, and write maintainable research code.

  • Familiarity with modern software engineering practices.

  • You document experiments clearly and communicate trade‑offs crisply.

Nice to have
  • Robotics or autonomous driving experience.

  • Experience applying RL to LLMs or robotics.

  • Experience with VLA (vision‑language‑action) models.

  • Proven productization of deep nets (latency/throughput constraints, telemetry, on‑device optimization).

  • Publications at top‑tier deep learning conferences or equivalent open‑source contributions.

  • Familiarity with OpenVLA, Physical Intelligence (π) models, or similar open source VLA frameworks.

What We Offer
  • Comprehensive health coverage for US‑based employees, including fully paid medical, dental, and vision insurance, with virtual care and employee assistance resources.

  • Meaningful time off to rest and recharge: 23 days of PTO (accrued), separate sick leave, and paid company holidays.

  • 401(k) retirement plan with employer match.

  • Equity included–we believe builders should share in what they build.

  • Free daily catered lunch, snacks, and drinks in‑office.

  • Collaboration with top‑tier engineers, researchers, and product experts in AI and robotics.

  • Freedom to influence the product and own key initiatives.

For this role in California, the expected base salary range is $180,000–$300,000 USD per year; your placement in that range depends on how your experience maps to our internal leveling.

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