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Salary
$185k – $374k per year (Estimated)
Location
In office (Palo Alto, Zurich, London)
Seniority
Staff · 8+ years exp
Employment
Full-Time
Overview
Company
Impact
Profile match
Odyssey is a deep-tech artificial intelligence startup building multimodal "world models" for interactive 3D simulations, headquartered in Palo Alto, California. Founded in 2023 by Oliver Cameron (former VP of Product at Cruise and co-founder of Voyage) and Dr. Jeffrey Hawke (former VP of Technology at Wayve), the venture has raised over $337 million in funding - highlighted by a $310 million Series B at a $1.45 billion valuation led by Google Ventures, EQT Ventures, and Natural Capital.

Who we are

Odyssey is an AI lab pioneering general world models: causal, multimodal systems that learn to predict and interact with the world over long horizons. This foundational technology promises to revolutionize robotics, science, healthcare, education, gaming, defense, and beyond.

Odyssey’s founders previously pioneered the most complex application of physical AI: self-driving cars. They’ve now brought together a world-class research team from DeepMind, Tesla, Waymo, Meta, Apple, and Wayve, who have made significant contributions to language models (DeepMind Gemini), video models (DeepMind Veo), world models (Wayve GAIA), and autonomous systems (Tesla FSD).

Odyssey has raised significant venture capital from GV, Amazon, AMD, EQT, NVIDIA, Natural Capital, In-Q-Tel, Elad Gil, Jeff Dean, Guillermo Rauch, Garry Tan, Kyle Vogt, and researchers from OpenAI, DeepMind, MSL, Recursive, and Thinking Machines.

What we're looking for

We're seeking those who are obsessed with gaining every last drop of performance from complex systems. We're building inference infrastructure to scale to hundreds of thousands of users within a year, while also working with massive, ever-growing datasets and models in training. Your focus will be ensuring our models deliver exceptional speed, reliability, and scalability in both the training and inference phases, optimizing efficiency to minimize TFLOPS per user and training compute cost.

What you'll do

  • Optimize models that will be used in real-time by hundreds of thousands of users.

  • Design and implement distributed training strategies to reduce training time and resource consumption on large GPU clusters.

  • Partner with our elite team of ML researchers and engineers to ensure model architectures are highly performant from conception.

  • Develop sophisticated tools to identify performance bottlenecks and stability issues in both training and serving environments.

  • Pioneer innovative approaches, frameworks, and system designs that enhance performance metrics across our model development and inference infrastructure.

  • Have significant autonomy in technical decisions.

  • Use the latest-generation GPUs.

Who you are

  • 8+ years of software engineering experience, with significant work in ML performance.

  • Deep insight into modern machine learning architectures with a natural instinct for performance optimization, particularly distributed training and inference.

  • Track record of owning projects end to end.

  • Problem-solving mindset with the ability to acquire new skills as needed.

  • Proficiency with PyTorch (or TF/JAX) and Triton as well as NVIDIA GPU ecosystems and optimization stacks.

  • Highly metric-based.

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