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Exa
Verified live 1d ago

Research, ML

Brief overview

San Francisco, CaliforniaIn-person
MastersOr in progress
Sponsors visasStated in posting
2 H-1B approvalsDept. of Labor
PyTorchTransformer modelsLarge-scale dataset creationModel evaluationSearch architecture designMachine learning research

About the company

AI-powered search startup delivering enterprise-grade tools.

Visa sponsorship history

3 years sponsoring, last filed FY2026

Data powered by U.S. Department of Labor. This does not guarantee sponsorship for this specific role.
2H-1B approved
100%approval rate
1new H-1B hires
$152,962median wage / yr
H-1B Petition ApprovalsVisas USCIS actually granted: the strongest sign the company sponsors.
20241
20251
LCA Certified ApplicationsAn early filing step, not a visa approval: it signals intent, not confirmed sponsorship.
20241
20261
Top sponsored roles
Forward Deployed EngineerHead of Marketing

Job description

Exa is building a search engine from scratch to serve every AI application. We build massive-scale infrastructure to crawl the web, train state-of-the-art embedding models to index it, and develop super high performant vector databases in Rust to search over it. We also own a $5M H200 GPU cluster that regularly lights up tens of thousands of machines.

On the ML team, we train foundational models for search. Our goal is to build systems that can instantly filter the world's knowledge to exactly what you want, no matter how complex your query. Basically, put the web into an extremely powerful database.

We're looking for an ML Research Engineer to train embedding models for perfect search over the web. The role involves dreaming up novel transformer-based search architectures, creating datasets, creating evals, beating our internal SoTA, and repeat.

Desired Experience

  • You have graduate-level ML experience (or are an exceptionally strong undergrad)

  • You can code up a transformer from scratch in PyTorch

  • You like creating large-scale datasets and diving deeply into the data

  • You care about the problem of finding high quality knowledge and recognize how important this is for the world

Example Projects

  • Pre-training: Train a hundred billion parameter model

  • Fine-tuning: Build an RLAIF pipeline for search

  • Dream up a novel architecture for search in the shower, then code it up and beat our best model's top score

  • Build an eval system that answers how do we know we're advancing our search quality? (this is an incredibly difficult question to answer)

This is an in-person opportunity in San Francisco. We're happy to sponsor international candidates (e.g., STEM OPT, OPT, H1B, O1, E3). In addition to premium healthcare benefits (medical, dental, vision), we also offer fertility benefits and a monthly wellness stipend to all of our employees.

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