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Product Manager - Post Training

πŸ•’ 3 days ago
Product ManagementAI ResearchModel TrainingReinforcement Learning

πŸ“œ Description

  • Operate within frontier research without imposing a conventional software roadmap.
  • Partner with post-training research leaders on priorities and decision points.
  • Translate ambiguous research questions into concrete learning plans.
  • Build lightweight operating mechanisms for critical work without imposing a software-development process.
  • Connect research, product, infrastructure, safety, and leadership for cross-team decisions.
  • Support the path from research results to usable capabilities and document findings.

πŸ› οΈ Requirements

  • Experience as an early or first product leader in a technical startup or research organization.
  • Experience with model training, post-training, RL, evaluations, data, safety, or inference.
  • Ability to understand research deeply and connect technical choices to model behavior.
  • Strong track record of identifying missing connections and unresolved assumptions.

✨ Benefits

  • Dental
  • Vision benefits
  • Unlimited PTO
  • Paid parental leave
  • Relocation support as needed
Full job description

About Thinking Machines

The mission of Thinking Machines is to build AI that extends human will and judgment. We are training frontier models with Inkling, developing Tinker to let people make models their own, and crafting interfaces that broaden human-AI communication. We believe the future worth building is human, and we're hiring people who want to build it.

About the Role

This is a product role for someone who can operate inside frontier research without trying to turn research into a conventional software roadmap. The work requires judgment, technical fluency, user empathy, discretion, and the ability to create clarity without creating bureaucracy.

The Post-Training Product Manager will work as a high-trust partner to our post-training researchers. Your role is to understand the work deeply enough to ask the right questions, identify missing connections, surface implications, and help the team decide what matters next. The role sits at the seam between research, model behavior, data and environments, evaluations, training and inference infrastructure, safety, product, and the people using our models.

Inkling was post-trained across math, agentic code and tool use, audio, image, chat, and safety, with a large-scale asynchronous RL program that exceeded 30M rollouts. Inkling and Inkling-Small share a scalable post-training stack, and Inkling is available for customization on Tinker.

The next phase requires tight loops among research priorities, model behavior, evaluations, infrastructure constraints, user and customer learning, and product direction. The person in this role will help those loops compound instead of fragment β€” maintaining the bird's-eye view while researchers go deep: where work is converging, where teams are solving adjacent problems without enough shared context, what evidence is missing, what decisions are blocked, and how research becomes a stronger model and a useful product.

What You'll Do

  • Partner with post-training research leaders on priorities, sequencing, decision points, and the connection between research work and the broader model and product agenda

  • Maintain a clear view across SFT, RL, data and environments, evaluations, safety, model behavior, inference, training infrastructure, and product dependencies; identify gaps before they become blockers

  • Translate ambiguous research and product questions into concrete learning plans: what must be true, what evidence would change the decision, which experiments or user signals matter, and when the team should revisit the direction

  • Build lightweight operating mechanisms for critical work β€” owners, state, dependencies, decisions, risks, release criteria, and follow-through β€” without imposing a software-development process on research

  • Bring qualitative and quantitative evidence about model behavior and real workflows into research prioritization, ensuring user knowledge is represented accurately rather than flattened into feature requests

  • Connect research, product, infrastructure, safety, and leadership when a decision spans teams or when local optimization creates a broader product or model tradeoff

  • Support the path from research result to usable capability: internal adoption, evaluation, documentation, release readiness, product integration, and feedback after launch

  • Write clear narratives that explain what the team has learned, what remains uncertain, what decisions are needed, and why the work matters

  • Take on the unowned work that is necessary to move a critical research-product outcome forward

Skills and Qualifications

Minimum qualifications:

  • Experience as an early or first product leader in a technical startup, AI lab, research organization, or new product area where the role and operating model were not defined for you

  • Experience working closely with model training, post-training, RL, evaluations, data, safety, inference, developer platforms, or another technically demanding research-product area

  • Ability to understand research deeply enough to earn trust, ask sharp questions, and connect technical choices to model behavior and users without overstating your expertise

  • Strong track record identifying the missing connection, unresolved assumption, or cross-team decision that specialists may not see while deep in the work

Preferred qualifications:

  • Ability to represent user and product truth in a research environment without reducing research to a list of customer requests

  • Comfortable making progress when the goal, metric, or path is still evolving, and the correct next step may be a learning loop rather than a launch

  • Clear communicator who handles disagreement without ego and is willing to change a recommendation when the evidence changes

  • Motivated by senior IC ownership and proximity to the work more than a large PM team or a conventional product ladder

  • Background as a research product leader or early AI product leader at a frontier lab, model company, or technically ambitious startup; a technical founder, former engineer, or applied scientist who moved into product; a PM for model training, post-training, evaluation platforms, data systems, ML infrastructure, or developer platforms; or the first PM at a company that turned a novel technical capability into a product, category, or developer ecosystem

Logistics

  • Location: This role is based in San Francisco, CA.

  • Compensation: Depending on background, skills and experience, the expected annual salary range for this position is $350,000 - $450,000 USD.

  • Visa sponsorship: We sponsor visas. While we can't guarantee success for every candidate or role, if you're the right fit, we're committed to working through the visa process together.

  • Benefits: Thinking Machines offers generous health, dental, and vision benefits, unlimited PTO, paid parental leave, and relocation support as needed.

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