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Research Engineer, Generative Video @ Mirage

USOnsiteFull-time
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About this role

Mirage is an AI video company focused on making creation dramatically easier. Our team tackles some of the hardest creative and technical challenges in generative media.

We get to rethink how people collaborate with AI that can actually do creative work with them—defining entirely new interaction paradigms for AI-native video tools. We make that possible by building multimodal agents that turn creative direction into edits, rendering engines that composite multiple layers of video and graphics, and generative video models trained from the ground up that create new media when needed.

All of this comes together in Captions, our creative workspace for generating, editing, and designing video. The technology behind Captions is now available more broadly: Tesseract gives any AI agent native video-editing capabilities, while developers can integrate our models into their own products through APIs.

Explore our work Captions — Our flagship creative workspace Tesseract — Our professional video engine for AI agents Research — The foundation models we build in-house Updates — The latest from Mirage TechCrunch, Forbes, Fast Company — Press

Our Investors

We’re very fortunate to have some the best investors and entrepreneurs backing us, including Index Ventures, Kleiner Perkins, Sequoia Capital, Andreessen Horowitz, General Catalyst, Uncommon Projects, Kevin Systrom, Mike Krieger, Lenny Rachitsky, Antoine Martin, Julie Zhuo, Ben Rubin, Jaren Glover, SVAngel, 20VC, Ludlow Ventures, Chapter One, and more.

Please note that most of our roles will require you to be in-person at our NYC HQ (located in Union Square)

About the Role Mirage is seeking an ML Engineer to build and scale the systems powering our video generation models. You’ll work on novel modeling approaches, training objectives, scaling strategies, and inference optimization and efficiency to bring cutting-edge models into production.

This role sits at the intersection of research and systems engineering, focusing on making advanced models faster, more efficient, and capable of ultra-low latency, real-time generation.

Responsibilities

Train and optimize large-scale video and multimodal models

Improve efficiency across training and inference (memory, latency, cost)

Implement techniques such as distillation, quantization, and pruning to aggressively accelerate diffusion and autoregressive generation

Build and maintain distributed training systems

Optimize GPU utilization, parallelism, and throughput

Develop tooling for experimentation, evaluation, and debugging

Translate research models into robust, production-ready systems

Monitor and improve model performance in real-world usage

What makes you a great fit

BS/MS/PhD in CS, ML, or related field

2+ years of professional industry experience

Strong experience in deep learning systems and infrastructure

Expertise in PyTorch, CUDA, Triton, and distributed training (FSDP, etc.)

Experience scaling and optimizing large models under low-latency inference constraints

Strong debugging and performance profiling skills

Ability to move quickly from prototype to production

Benefits:Comprehensive medical, dental, and vision plans

401K with employer match

Commuter Benefits

Catered lunch multiple days per week

Dinner stipend every night if you're working late and want a bite!

Grubhub subscription

Health & Wellness Perks

Multiple team offsites per year with team events every month

Generous PTO policy

Captions provides equal employment opportunities to all employees and applicants for employment and prohibits discrimination and harassment of any type without regard to race, color, religion, age, sex, national origin, disability status, genetics, protected veteran status, sexual orientation, gender identity or expression, or any other characteristic protected by federal, state or local laws.

Please note benefits apply to full time employees only.

Skills

Engineering

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