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Senior Machine Learning Engineer - Generative Models

Join Applied Intuition as a Senior Machine Learning Engineer to advance generative modeling technology for autonomous vehicle simulation.

Location
Sunnyvale, California, United States
Compensation
Not disclosed
Level
senior
Type
full time · On-site

Posted by employer 17 hours ago

First seen on Joblaze 4 hours ago

Last verified on the company career page 4 hours ago

Apply at Applied Intuition → Save job Scanned from appliedintuition.com

What you'll build

  • Develop and advance diffusion and video generation models
  • Push the limits of generative simulation for driving scenes
  • Combine generative models with neural reconstruction pipeline
  • Define and build evaluation metrics and validation workflows
  • Collaborate closely with product teams to deliver solutions

Must have

  • 5+ years of experience developing and shipping ML or computer vision systems
  • A minimum of a Bachelor's degree in computer science, physics, robotics, or equivalent
  • Strong hands-on experience with diffusion models and video generation
  • Proficiency in Python and PyTorch
  • A proven ability to turn research ideas into robust, production-quality software

Nice to have

  • Experience with learning-based 3D reconstruction
  • A background in computer vision or computer graphics
  • A track record of shipping ML products with evaluation metrics
  • Experience in autonomous driving or robotics
  • Experience with large-scale distributed training and inference optimization

Practical constraints

  • In-office expectation of 5 days a week

Requirements

Experience
5+ years
Education
Bachelor's degree

Not disclosed in this posting: compensation, visa sponsorship.

Joblaze summary

In this role, the Senior Machine Learning Engineer focuses on enhancing generative modeling technology for Applied Intuition's Neural Simulation product, specifically through the development of diffusion and video generation models. Key skills include expertise in Python, PyTorch, and a strong background in generative modeling and computer vision. This position is well-suited for experienced engineers with over five years in machine learning or computer vision, particularly those who have a track record of implementing research into production. The team collaborates closely with various departments to deliver comprehensive solutions for autonomous vehicle development.

Joblaze insights

  • Listed today — first seen on Joblaze October 7, 2026. Last confirmed on Applied Intuition's careers page October 7, 2026.
  • Python appears in 53.1% of 544 comparable senior ai/ml roles in United States; video generation appears in 0.7% of 544 comparable senior ai/ml roles in United States.

Quick facts

Is the Senior Machine Learning Engineer - Generative Models role remote?
No — this is an on-site role in Sunnyvale, California, United States.
How much experience is required?
At least 5 years of relevant experience for this Senior Machine Learning Engineer - Generative Models role.
Where is the role based?
Applied Intuition is hiring for this position in Sunnyvale, California, United States.
What's the tech stack?
Joblaze extracted these technologies from the posting: Computer Vision, Diffusion Models, Machine Learning, PyTorch, Python, video generation.
What seniority level is this role?
Applied Intuition targets senior candidates for this position.
Is this full-time or contract?
Full-time for this Senior Machine Learning Engineer - Generative Models role at Applied Intuition.

From the original posting

About the role and team

We are looking for senior machine learning engineers to advance the generative modeling technology behind Neural Simulation, our state-of-the-art product for turning real-world driving data into high-fidelity, photorealistic simulation environments. As part of this team, you will push the boundaries of what the product can do with diffusion and video generation models, creating realistic, controllable sensor data, augmenting real-world logs with new scenarios, and making the product more useful for customers who rely on it to train and validate their autonomy systems. Your work will directly shape how the largest OEMs in the world develop the next generation of data-driven autonomous vehicles.

This role is ideal for engineers who thrive at the intersection of generative modeling, computer vision, and machine learning, and who are excited to take a state-of-the-art product further by bringing the latest research into production and solving the hardest simulation gaps in Physical AI.

At Applied Intuition, you will:

  • Develop and advance diffusion and video generation models that power our Neural Simulation product, bringing the latest research into production to improve realism, controllability, and scalability

  • Push the limits of generative simulation for driving scenes, including:

    • Controllable generation conditioned on scene layout, camera pose, actors, and trajectories

    • Temporally consistent, multi-camera video generation

    • Augmenting real-world logs with new scenarios, actors, and conditions such as weather and lighting

  • Combine generative models with our neural reconstruction pipeline to improve fidelity and coverage of simulated scenes

  • Scale training and inference of large generative models for production workloads

  • Define and build evaluation metrics, benchmarks, and validation workflows that measure realism, temporal consistency, controllability, and sim-to-real gap

  • Work closely with customers to understand their pain points and implement technical solutions in the Neural Simulation product

  • Collaborate closely with Infra, Autonomy, Research and other product teams to deliver end-to-end solutions

  • Take ownership of critical technical components and influence architecture and product decisions

We're looking for someone who has:

  • 5+ years of experience developing and shipping ML or computer vision systems

  • A minimum of a Bachelor's degree in computer science, physics, robotics, or equivalent

  • Strong hands-on experience with diffusion models and video generation (e.g., latent and video diffusion models, diffusion transformers)

  • A solid foundation in generative modeling and deep learning, including training and fine-tuning large models

  • Proficiency in Python and PyTorch

  • A proven ability to turn research ideas into robust, production-quality software

  • Strong problem-solving skills and comfort with ambiguity

Nice to have:

  • Experience with learning-based 3D reconstruction, such as 3D Gaussian Splatting, NeRFs, or feed-forward Gaussian Splatting

  • A background in computer vision (e.g., SfM, SLAM, photogrammetry) and/or computer graphics (e.g., rendering, rasterization, ray tracing)

  • A track record of shipping ML products with clearly defined evaluation metrics and benchmarks

  • Experience in autonomous driving or robotics, including working with multi-sensor data (camera, LiDAR, radar)

  • Experience with 3D-aware or multi-view consistent generation, or world models

  • Experience with large-scale distributed training and inference optimization (e.g., distillation, efficient sampling)

  • Programming experience in C++ and/or CUDA

  • Peer-reviewed research at conferences such as CVPR, ICCV/ECCV, NeurIPS, ICLR, ICML, or SIGGRAPH

  • A Master's degree or PhD in computer science, physics, robotics, or related fields

Standard company text repeated across Applied Intuition's postings is omitted here.

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