Research Scientist - World Model

Luma AI, Inc.

  • Redwood City, CA
  • 8 days ago

    Highlights

    You'll turn Luma's industry-leading generative video models into world models: interactive, controllable, physically faithful, and useful as a substrate for embodied reasoning. You'll invent next-generation world-model architectures and the controllability that lets an agent step into a generated world, and own the metrics that define success.

    Numbers & Facts

    LocationRedwood City, CA

    Description

    You'll turn Luma's industry-leading generative video models into world models: interactive, controllable, physically faithful, and useful as a substrate for embodied reasoning. This is the role at the center of the thesis.

    You'll invent next-generation world-model architectures and the controllability that lets an agent step into a generated world, and own the metrics that define success. It fits a researcher with deep generative-modeling or model-based-RL expertise who has trained models to the limits of a multi-node cluster. If you want a narrow, well-scoped research problem, this is broader and more open-ended than that.

    What You'll Own

    • Invent next-generation world-model architectures (diffusion, transformer, autoregressive, or hybrid), focused on controllability and physical consistency.

    • Develop controllability mechanisms - action conditioning, view conditioning, long-horizon rollouts - that let an agent step into the world.

    • Define and own the metrics: physical fidelity, long-horizon coherence, action-following, and downstream usefulness for policy training.

    • Run scaling studies that show where compute, data, and architecture pay off.

    • Publish at the frontier and contribute to the open-source release that is the long-term deliverable.

    First 90 Days

    One way the first 90 could unfold.

    • Days 1-30 - Immerse & Diagnose: Get deep on the current video models and where they fall short as world models.

    • Days 30-60 - Ship & Validate: Prototype a controllability mechanism or architecture change and measure it against physical-fidelity and action-following metrics.

    • Days 60-90 - Scale & Systemize: Run scaling studies and push the most promising direction toward the open release.

    What You Bring

    • PhD or equivalent research record in ML, computer vision, robotics, or a related field.

    • Deep expertise in at least one of: large-scale generative modeling (video/3D/world), self-supervised representation learning, or model-based RL.

    • Strong PyTorch and large-scale training experience, to the limits of a multi-node cluster.

    • A research record the field knows (top-venue publications and/or widely used open releases).

    Nice to Have

    • Prior work on world models, model-based RL, generative video, neural simulation, or 4D scene representations.

    • Experience using generative models for downstream embodied tasks (planning, control, evaluation).

    • Enthusiasm for open-sourcing frontier models.

    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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