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Software Engineer, Platform & Inference

Chai Discovery

San Francisco office

AI Infrastructure

Posted 10 months ago

midunknown

Verified open on Oct 5, 2026 ยท posted 313 days ago

Job Description

About Chai Discovery

Chai builds the design suite for molecules. We train frontier models that learn the underlying foundations of biochemical structure and interaction, so scientists can move faster and pursue targets that other methods cannot reach.

AI is reinventing life sciences the same way it reinvented software engineering, and Chai is at the forefront of this shift. Leading pharmaceutical companies like Eli Lilly, Pfizer, and Novartis are adopting our platform to power their drug discovery programs.

We value diverse perspectives and are ready to find greatness in unexpected places.

About the role

Platform engineers make Chai's models fast, cheap, and reliable at scale, and enable the outer loop that accelerates research: the infrastructure and software abstractions used to train, eval, and understand models.

You'll own the serving stack that turns our frontier models into a product scientists depend on: latency, throughput, GPU efficiency, batching, and autoscaling across a large multi-cloud GPU fleet. You'll also contribute to the work that enables turning raw models into product-ready pipelines, and the experiment and observability tooling that lets a researcher ship faster.

You've built high-performance services that developers love, moved ML systems into production at scale, and can see around corners before they become outages.

You'll work closely with the researchers who train the models, the product engineers who build on them, and the commercial team deploying them to the world's largest pharma companies.

About you

We index on systems judgment, ownership, and the scars that come from having run production infrastructure before. We're looking for engineers who get obsessed with hard problems and don't give up easily. We look for:

  • 4+ years building production systems, with real depth in performance, distributed systems, or ML serving

  • Experience optimizing model inference: GPU utilization, batching, quantization, caching, or kernel-level work

  • A platform mindset: you like building the tools and abstractions that make other engineers and researchers faster

  • End-to-end ownership of 24/7 systems, including observability, alerting, and incident response

  • Experience across both 0-to-1 buildouts and 1-to-n scale-ups, with an always-evolving playbook you bring wherever you go

  • The instinct to treat cost and efficiency as first-class constraints, not afterthoughts

A background in biology is not required. What makes the difference is technical excellence, curiosity about the domain, and grit.

We offer

The opportunity to work at the vanguard of AI research and frontier biology, with world-class people, on a mission that matters. We protect & promote a culture of high velocity and ownership. We compensate our team accordingly.

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Career context

This role is classified as AI Infrastructure - see the AI Infrastructure hub for the rest of the market.

$218k - $285k is the middle 50% of disclosed salaries, measured from 201 live AI Infrastructure postings on this board. Roughly two thirds of postings disclose nothing, so this describes the ones that do, not the whole market.

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