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AI Job Summary

You'll develop the reasoning core powering Luma's world-modeling systems, working across modeling, data, systems, and evaluation on problems without established solutions. The role combines science and engineering equally, requiring first-principles intuition for scaling and understanding why architectures succeed or fail. You'll need a Bachelor's, Master's, or PhD in Computer Science, Machine Learning, Physics, or Mathematics, plus demonstrated expertise in distributed computing, GPU cluster optimization, and rigorous experimental design. The work is based in-office.

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Job Description

You'll architect the reasoning core at the heart of Luma's world-modeling — the intelligence governing the world-simulations behind products like Dream Machine and Ray3. This is core research that powers everything Luma ships.

The role treats science and engineering as one discipline: you'll work across modeling, data, systems, and evaluation on problems where no playbook exists. It fits someone with first-principles intuition for scaling who understands why architectures succeed or fail, not just what the literature says. If you want to specialize narrowly in only the science or only the engineering, this asks for both.

What You'll Own

  • Drive the core research powering all of Luma's products — co-design multimodal representations, advance long-context training, and establish rigorous scaling laws.

  • Close the gap between training loss and user experience with proxy tasks and automated metrics that guide research decisions.

  • Build the research infrastructure for high-velocity work: production-research parity, reproducibility, and systems for rapid experimentation.

First 90 Days

One way the first 90 could unfold.

  • Days 1–30 — Immerse & Diagnose: Learn the current models and evals, and where the biggest scaling and quality gaps are.

  • Days 30–60 — Ship & Validate: Land a modeling or evaluation improvement that moves a metric that matters to users.

  • Days 60–90 — Scale & Systemize: Turn it into scaling laws and infrastructure the whole research team benefits from.

What You Bring

  • A Bachelor's, Master's, or PhD in Computer Science, Machine Learning, Physics, or Mathematics.

  • First-principles intuition for scaling: you understand why architectures succeed or fail at scale.

  • Fluency across frontier AI research and engineering as a single discipline.

  • Proven ability to design and rigorously analyze experiments and articulate complex concepts.

  • Practical experience with distributed or high-performance computing and optimizing training runs on large GPU clusters.

Nice to Have

  • A track record of publishing at top-tier venues (NeurIPS, ICML, ICLR).

  • Proven ability to build and lead research infrastructure with production-research parity.

  • Strong software-engineering practices: readable, reusable code, tests, and documentation.

  • Experience with low-precision training and hardware-aware optimization for next-gen clusters.

About Luma: Luma's mission is to build unified general intelligence that can generate, understand, and operate in the physical world. We believe multimodality is critical for intelligence — the next step beyond language models comes from vision. Luma is an equal opportunity employer.

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Luma AI
Gaming & Creative Tools · 100-200 Members · San Francisco, CA, United States

Luma AI builds generative models for 3D capture and video generation, including the Dream Machine video model.

Founded in 2021, Luma focuses on multimodal models that understand and generate the physical world.

All jobs at Luma AI

Location

United States Hybrid

Job Overview
Job Posted:
1 month ago
Workplace
Hybrid
Job Type
Full Time
Education
Any
Experience
3+ years

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