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UniversalAGI

ML Engineer

San Francisco

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hirly's read of this role

Role family
Data & ML
Seniority
Mid level
Country
US
Work mode
On-site / unstated
First seen by hirly
1 Oct 2026

Derived automatically from the posting. Upload your resume above to see how the role scores against it.

the posting

📍 San Francisco | 🏢 5 Days Onsite

Location: Onsite in San Francisco

Compensation: Competitive Salary + Equity

Who We Are

Engineering simulation is one of the last major categories of software that AI hasn't rebuilt. The tools used to design aircraft, ships, reservoirs, and medical devices still run on numerical methods that are decades old, and an engineer can wait a full day for a single answer. UniversalAGI is building foundation models that learn physics directly from data, and they are already running in early deployments on real computational fluid dynamics and reservoir engineering problems for some of the largest industrial and defense organizations in the world.

We are a team of 25 researchers and engineers in San Francisco backed by Elad Gil (#1 Solo VC), Eric Schmidt (former Google CEO), Prith Banerjee (ANSYS CTO), Ion Stoica (Databricks Founder), Jared Kushner (former Senior Advisor to the President), David Patterson (Turing Award Winner), and Luis Videgaray (former Foreign and Finance Minister of Mexico).

About the Role

UniversalAGI is hiring an ML Engineer to help ship ML outcomes by owning the execution layer: data preprocessing/generation, training/fine-tuning, benchmarking, and delivering results.

What You’ll Do

Build and maintain data preprocessing and data generation pipelines to support model training and evaluation.

Run training and fine-tuning workflows end-to-end and iterate quickly on performance improvements.

Design and execute benchmarking/evaluation suites to measure progress and customer outcomes.

Collaborate with PhD expert researchers to operationalize model architectures into repeatable, production-grade workflows.

Communicate results clearly (metrics, dashboards, short writeups) and maintain high-quality, reproducible work.

Qualifications

Strong software engineering skills (clean code, debugging, reliability, reproducibility).

Solid ML foundations and hands-on experience with the ML lifecycle: data → training/fine-tuning → evaluation/benchmarking.

Prior experience training or fine-tuning models (any modality/type - LLMs, computer vision, physics, surrogate models, etc.)

Olympic athlete mindset : You have high standards for yourself and are obsessed with measurable improvement on the metrics you are delivering.

Resourcefulness : you know when to do the “quick & correct” fix vs. when to invest in a robust solution, and you can justify the tradeoff with impact/

Ownership : Comfortable owning work end-to-end and being accountable for measurable outcomes.

Bonus Qualifications

Experience building data pre-processing pipelines for training ML models.

Experience with benchmarking methodology, experiment design, and metric selection.

Familiarity with distributed training / scalable compute workflows.

Experience in an FDE-style / delivery execution role (or similar “ship results fast” environments).

Cultural Fit

Technical Respect : Ability to earn respect through hands-on technical contribution

Intensity : Thrives in our unusually intense culture - willing to grind when needed

Customer Obsession : Passionate about solving real customer problems, not just publishing papers

Deep Work : Values long, uninterrupted periods of focused work over meetings

High Availability : Ready to be deeply involved whenever critical issues arise

Communication : Can translate complex model decisions to customers and team

Growth Mindset : Embraces the compounding returns of intelligence and continuous learning

Startup Mindset : Comfortable with ambiguity, rapid change, and wearing multiple hats

Work Ethic : Willing to put in the extra hours when needed to hit critical milestones

Team Player : Collaborative approach with low ego and high accountability

Bias for Action : Ships experiments fast, learns from failures, and iterates quickly

What We Offer

Opportunity to define the future of physics AI from the ground up

Work on cutting-edge problems at the intersection of deep learning and physics simulation

Direct collaboration with the founder & CEO and ability to influence company strategy

Competitive compensation with significant equity upside

In-person first culture - 5 days a week in office with a team that values face-to-face collaboration

Access to world-class investors and advisors in the AI space

Benefits

We provide great benefits, including:

Competitive compensation and equity.

Competitive health, dental, vision benefits paid by the company.

401(k) plan offering.

Flexible vacation.

Team Building & Fun Activities.

Great scope, ownership and impact.

AI tools stipend.

Monthly commute stipend.

Monthly wellness / fitness stipend.

Daily office lunch & dinner covered by the company.

Immigration support.

How We’re Different

“The credit belongs to the man who is actually in the arena, whose face is marred by dust and

sweat and blood; who strives valiantly; who errs, who comes short again and again... who at the

best knows in the end the triumph of high achievement, and who at the worst, if he fails, at least

fails while daring greatly." - Teddy Roosevelt

At our core, we believe in being “in the arena. ” We are builders, problem solvers, and risk-takers who show up every day ready to put in the work: to sweat, to struggle, and to push past our limits. We know that real progress comes with missteps, iteration, and resilience. We embrace that journey fully knowing that daring greatly is the only way to create something truly meaningful.

If you're ready to train the models that will revolutionize physics simulation, push the boundaries of what AI can learn, and deliver real impact, UniversalAGI is the place for you.

Original posting on UniversalAGI's site ↗

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