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Applied AI Product Strategy & Revenue Lead

Prime Intellect · San Francisco

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Required skill areas (9)

Commercial Acumen

Revenue generation · Commercial judgment · Commercial proposal · Commercial value · …

Technical Understanding

Technical product understanding · Technical scope · Reference architectures · AI infrastructure

Product Strategy

AI product strategy · Customer-to-product translation · Customer segments

Research & Development

Applied Research prototype · Research agenda · Research problems

AI & Workflows

Managed post-training · Post-training AI · Agent workflows

Operations & Process

Ambiguity tolerance · Managed work · Internal workstreams

Customer Engagement

Customer conversations · Enterprise customers

Account & Sales

Account strategy · Procurement

Evals

Evals

Job description

Applied AI Product Strategy & Revenue Lead 
 Own Your Intelligence 
 
 Prime Intellect is building the open superintelligence stack: the infrastructure frontier AI labs build internally, made available to every ambitious AI team. 
 
 Our platform, Lab, unifies compute, environments, evaluations, secure sandboxes, high-performance training, and deployment into one full-stack system for post-training at frontier scale - from SFT and RL to tool use, agent workflows, and continuously improving production models. We are building open frontier AI: open-source models trained end to end for long-horizon tasks like autonomous research, and the full-stack platform our own research team uses to build them. The next generation of AI companies, enterprises, and research teams do not just need more GPUs. They need the ability to turn their own workflows, tools, data, and feedback loops into superintelligence they own.
 
 Prime Intellect has raised $150M in total funding from Founders Fund, Radical Ventures, NVIDIA, and exceptional AI, infrastructure, and enterprise operators — including Andrej Karpathy, Dwarkesh Patel, and leaders and founders from Ramp, Perplexity, Harvey, Mercor, Zapier, Datadog, Cognition, OpenAI, Thinking Machines, Together AI, SemiAnalysis, LangChain, Browserbase, Cloudflare, Sierra, Databricks, Airbnb, OpenRouter, Standard Intelligence, Fleet, Core Auto, and more. We are looking for people who want to build at the intersection of frontier research, real infrastructure, and go-to-market for a category that does not fully exist yet.
 
 The Role
 This is not a traditional sales role. It is not a traditional product role. It is not a traditional solutions engineering role.
 You will help define how Prime Intellect turns frontier post-training infrastructure into a product customers can understand, buy, deploy, and expand.
 Today, the hardest part of the business is not selling raw compute. It is refining the product, customer motion, and technical wedge together with Applied Research, Product, Engineering, and the customer. We are selling something much more complex and much more valuable than GPUs: the ability for customers to build their own lab — environments, evals, verifiers, agents, training runs, and deployment loops that compound over time.
 You will own that messy middle.
 You will work directly with customers, the CEO, GTM leadership, Applied Research, and Engineering to translate ambiguous customer pain into a concrete product strategy, technical scope, commercial proposal, and path to revenue. You will help us figure out where the product is ready, where it needs to be shaped, what the customer actually wants, and how to turn early traction into repeatable motion.
 This is a role for someone who wants to be in the room where a new category is being created.
 What You’ll Own
 Customer-to-Product Translation
 You will work with frontier AI labs, fast-growing AI startups, and enterprise AI teams to understand what they are trying to build, where their current stack breaks, and how Prime Intellect can become the infrastructure layer underneath their post-training and agent workflows.
 You will turn vague, high-stakes customer conversations into clear technical and commercial strategy:
 What is the customer actually trying to improve?

 Is the wedge compute, evals, environments, sandboxes, managed RL, SFT, inference, or a full-stack workflow?

 What should Applied Research build or prototype?

 What needs to be packaged as product?

 What should be in scope for a POC versus a long-term deployment?

 What is the fastest path to a strong yes?

 Pre-PMF Product Strategy
 You will help shape Prime Intellect’s product motion before every part of the playbook is obvious.
 That means identifying patterns across customer conversations, building repeatable narratives, defining packaging, sharpening use cases, and helping the team understand which customer asks are one-off noise versus signs of a massive market.
 You will help answer questions like:
 How do we explain Lab to different customer segments?

 Which customer workflows should become reference architectures?

 What should we productize versus deliver as managed work?

 Where is the strongest wedge for enterprise customers?

 Which signals show that a customer is ready for managed post-training?

 How do we turn Applied Research work into revenue without diluting the research agenda?

 Revenue Ownership
 You will own high-value customer opportunities from first serious conversation through qualification, scoping, proposal, POC, procurement, and expansion.
 You will not be measured on activity. You will be measured on whether the most important customers move.
 This includes:
 Running discovery with technical and executive stakeholders

 Building the business case and technical wedge

 Owning account strategy with leadership

 Drafting proposals, scopes, and commercial structures

 Coordinating internal workstreams across Applied Research, Product, Engineering, Legal, and Finance

 Creating momentum through ambiguity

 Turning early deployments into expansion and long-term platform revenue

 Applied Research Partnership
 You will work extremely closely with Applied Research.
 The best version of this role has enough technical taste to understand where an RL/post-training workflow is real, where a customer is hand-waving, and where a sharp Applied Research prototype could unlock a major deal.
 You will help Applied Research prioritize customer-facing work by bringing signal from the field:
 Which evals matter?

 Which environments should we build?

 Which agents or workflows are most commercially valuable?

 Which technical demos will change the customer’s mind?

 Which customer problems are actually research problems in disguise?

 Category Creation
 The market understands compute. It does not yet fully understand full-stack post-training infrastructure.
 You will help write the playbook.
 You will contribute to positioning, sales narratives, customer decks, case studies, reference architectures, launch moments, and internal strategy. You should be able to turn raw customer conversations into crisp language the entire company can use.
 What We’re Looking For
 We are looking for exceptional generalists with rare taste across AI, product, customers, and commercial strategy.
 You might come from:
 Technical GTM at a frontier AI, infra, devtools, or enterprise software company

 Founder or early operator experience at an AI startup

 Product or strategy at a highly technical company

 Forward-deployed engineering, solutions, or applied AI work

 Investing, venture, or strategic finance with deep AI infrastructure exposure

 Research-adjacent roles where you worked directly with customers or product teams

 You should have:
 Strong product and commercial judgment

 Ability to understand technical products quickly

 Excellent written communication

 High agency and comfort with ambiguity

 Taste for what makes a customer problem real

 Ability to work with researchers, engineers, executives, and operators

 Sharp instincts around enterprise buying, POCs, procurement, and expansion

 Obsession with AI, post-training, agents, evals, and infrastructure

 Ability to create structure where none exists

 You do not need to be a researcher, but you should be technical enough to earn trust with researchers and customers.
 You do not need to be a traditional salesperson, but you should be commercially intense enough to close.
 You do not need to be a PM, but you should have strong product taste.
 Bonus Points
 Experience with RL, SFT, evals, agent frameworks, or LLM post-training

 Experience selling or deploying infrastructure, AI platforms, devtools, or enterprise AI products

 Experience working with frontier AI labs, model companies, or infra-heavy startups

 Ability to write excellent customer-facing decks, memos, proposals, and launch narratives

 Strong network across AI startups, research labs, or enterprise AI teams

 Founder mentality and willingness to do unglamorous work to win

 Why This Role
 Most GTM roles ask you to sell a product someone else already defined.
 This role asks you to help define the product, the market, the motion, and the revenue engine at the same time.
 You will work on the hardest commercial and product questions at one of the fastest-growing companies in AI infrastructure. You will sit close to customers building real AI systems, researchers pushing the frontier of post-training, and leadership making company-defining decisions.
 If you want a clean playbook, this is not the role.
 If you want to help invent the playbook for how frontier AI infrastructure gets built, packaged, sold, deployed, and scaled, this is the role.
 What We Offer
 Competitive cash compensation and meaningful equity

 Flexible work in San Francisco or hybrid-remote

 Visa sponsorship and relocation support

 Professional development budget

 Team off-sites and conference attendance

 A front-row seat to building the infrastructure layer for open AI

 Ready to Build the Commercial Engine for Open Superintelligence?
 Apply to help Prime Intellect turn frontier post-training infrastructure into the product, platform, and customer motion that powers the next generation of AI systems.
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