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AI Product FDE

MULTI·ON

San Francisco, CAJobPosted 1y agoStill listed 2 days ago

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At a glance

Compensation
No compensation found
Location
San Francisco, CA
Work Authorization
Not specified

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Job overview

MULTI·ON is hiring an AI Product Engineer. MULTION is seeking an AI Product Engineer to serve as the technical liaison between their research and engineering teams and device manufacturing partners. This role involves significant onsite travel to partner facilities to translate product ideas into shippable features, then returning to the codebase to build them. The ideal candidate thrives on seeing their work integrated into flagship products and keynote demonstrations.

Key focus areas include Own the path from idea to feature shipped on a flagship device, Provide onsite technical leadership at partner locations, and Develop end-to-end product surfaces for agent capabilities on-device.

Important skills include Mobile Code, LLM-Powered Features, On-Device Inference, Mobile Constraints, Running Models Outside The Cloud, and Consumer Hardware Product Development.

Skills & qualifications

RequiredNice to have

Skills

Mobile CodeLLM-Powered FeaturesOn-Device InferenceMobile ConstraintsRunning Models Outside the CloudConsumer Hardware Product DevelopmentReliable Agentic SystemsScoping Partner AsksTechnical LeadershipTranslating Model Improvements Into Partner WinsBuilding Partner-Ready DemosBringing Partner Feedback Back

Qualifications

Something Built With a Customer or Partner

Benefits

Relocation Assistance

Full job description

Think Different. Build the Future. 🚀

Our Mission Build everyday AGI. Trustworthy, consumer-grade agents that redefine human–AI collaboration for millions. Software shouldn’t wait for commands; it should partner with you, amplifying what you can do every single day.

Why AGI, Inc. We’re a stealth team of elite founders and AI researchers, with backgrounds spanning Stanford, OpenAI, and DeepMind . We’re industry leaders in mobile and computer-use agents, bringing these capabilities to consumer scale.

Grounded in years of agent research, our AI is designed with trustworthiness and reliability as core pillars, not afterthoughts.

We are supported by tier-1 investors who funded the first generation of AI giants; now they’re backing us to build the next: everyday AGI. (Watch the demo )

If you see possibility where others see limits, read on.

The technical face of AGI inside the world's biggest device makers.

You'll be the connective tissue between AGI's research and engineering teams and the partners who put our agents in front of millions of users. You'll spend real time onsite — at global headquarters, R&D labs, and manufacturing facilities — turning vague partner asks into shipped capabilities. Then fly back, get into the codebase, and build the feature.

This is for engineers who get bored shipping internal tools. You want your work in a keynote demo.

🤩 Tasks you will own

  • The path from "interesting idea on a partner call" to "feature shipped on a flagship device" — prompts, evals, mobile code, and the launch readiness doc

  • Onsite technical leadership at one or more partners — you're the senior eng they call when something matters

  • End-to-end product surfaces for one or more agent capabilities, on-device

🤚 Areas where you will assist

  • Research, by translating model improvements into partner wins

  • Partnerships, by building partner-ready demos that close deals and expand scope

  • Product engineering, by bringing partner feedback back in a way that actually changes what we build

📚 Skills you'll be expected to teach

  • How to scope a partner ask without freezing — turning "make it magical" into prompt + model + UX decisions

  • How to ship LLM-powered features that survive contact with a real device, a real user, and a real launch date

🧑‍🎓 Skills you'll be expected to learn

  • On-device inference, mobile constraints, and the engineering of running models outside the cloud

  • World-class consumer hardware product development, from the inside

  • Reliable agentic systems from the people who published the canonical papers on it

🏆 Timeline of success After 30 days — Onsite at least once with a partner. One agent capability shipped into our codebase. You know which model and agent assumptions break in their environment.

After 60 days — Partner PMs ping you directly. A feature you shipped is running on partner devices in pre-production. You can name, without a deck, the three things this partner needs from us next quarter — and you have prototypes for two of them.

After 90 days — Your work is in a partner launch path. You've made the case for the next major bet on this account and the team has bought in. Partner leadership references you by name.

💰 Compensation Competitive cash and meaningful equity. Covered international travel for partner work. Top-tier relocation and immigration support. SF, in person.

How to apply Send a link to something you built with a customer or partner, your resume or LinkedIn, and two sentences on the hardest problem you've cracked under a real deadline. Every exceptional candidate hears back within 48 hours.

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