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Protege
United States
Source: Protege careers · View original posting
From Protege's posting. “We” and “our” refer to the employer.
We are building Protege to solve the biggest unmet need in AI — getting access to the right training data. The process today is time intensive, incredibly expensive, and often ends in failure. The Protege platform facilitates the secure, efficient, and privacy-centric exchange of AI training data.
Solving AI’s data problem is a generational opportunity. We’re backed by world-class investors and already powering partnerships with some of the most ambitious teams in AI. The company that succeeds will be one of the largest in AI — and in tech.
We’re a lean, fast-moving, high-trust team of builders who are obsessed with velocity and impact. Our culture is built for people who thrive on ambiguity, own outcomes, and want to shape the future of data and AI.
We are building Protege to solve the biggest unmet need in AI — getting access to the right training data. The process today is time intensive, incredibly expensive, and often ends in failure. The Protege platform facilitates the secure, efficient, and privacy-centric exchange of AI training data.
Solving AI’s data problem is a generational opportunity. We’re backed by world-class investors and already powering partnerships with some of the most ambitious teams in AI. The company that succeeds will be one of the largest in AI — and in tech.
We’re a lean, fast-moving, high-trust team of builders who are obsessed with velocity and impact. Our culture is built for people who thrive on ambiguity, own outcomes, and want to shape the future of data and AI.
Role Overview
We're hiring a Product Manager to own the supply side of Protege's data platform — the pipeline that takes raw data from a partner and turns it into something catalog-ready, trustworthy, and usable. Right now, that process is manual, inconsistently applied, and a source of delivery risk. Your job is to change that.
This is a horizontal platform role, not a vertical one. You own the infrastructure that makes data trustworthy enough to build products from in the first place: the validation gates, the metadata generation pipelines, the QA standards, the de-identification transformations, and the catalog-readiness criteria that let the rest of the organization actually trust what's in our catalog.
You'll work across healthcare, media, and any other vertical we enter. You'll write SQL, review pipeline outputs, define what "good" looks like at each stage of ingestion, and translate those standards into platform requirements that engineering can build against.
The supply side is where data quality is won or lost. If this layer isn't working, nothing downstream works. It's foundational, largely invisible to customers, and one of the most important things we can build.
define the stages, validation gates, and quality checks that data passes through from partner arrival to catalog-ready; own the platform requirements that make this repeatable across modalities and verticals
own the product decisions around what metadata gets extracted or generated at ingestion, including transcripts, tags, confidence scores, schema inference, at what threshold, and how it gets stored and surfaced
define what "catalog-ready" means, build the tooling that enforces it, and get into the data directly to validate that standards are being met; you’ll run queries and review pipeline outputs, not just read dashboards
work with vertical stakeholders to translate their "what does ready mean for our vertical" requirements into consistent platform-level standards that don’t require custom engineering per deal
30 days: Ramp
: Build a clear understanding of Protege’s current data ingestion workflow, including how raw partner data moves from arrival to catalog-ready. Get hands-on with pipeline outputs, schemas, metadata, validation checks, and QA processes so you understand where quality risk shows up in practice. Build context with engineering, vertical stakeholders, GTM / delivery, and DataLab on where ingestion quality is most manual, inconsistent, or risky today.
60 days: Take Ownership:
Own the first clear version of what “catalog-ready” means across the ingestion pipeline, including validation gates, metadata requirements, QA standards, and readiness criteria. Translate the highest-priority ingestion quality gaps into product requirements engineering can build against.
90 days: Operate Independently:
Own the roadmap for improving ingestion quality, metadata generation, QA tooling, de-identification workflows, and catalog readiness. Create a repeatable operating rhythm for reviewing pipeline outputs, quality signals, and ingestion risks with the right cross-functional partners
This is not a role for someone who has primarily owned data products from the customer side — analytics dashboards, BI tooling, or data visualization. The product here is the pipeline and the infrastructure, not the interface on top of it. If you haven't actually dug into raw data files to find out why a pipeline produced the wrong output, this is probably not the right fit.
Protege Values
Pass the Loved Ones’ Test
We act with integrity and do the right thing — especially when it’s hard and no one is watching.
Always Find a Way
We are resourceful, resilient builders who solve hard problems and push through obstacles.
Go Fast and Grow Fast
Velocity matters. We move with urgency, learn quickly, and continuously improve as individuals and as a company.
Practice Kindness and Candor
We communicate directly and respectfully, building trust through honest feedback and genuine care for one another.
Deliver Together
We win as one team. Collaboration, accountability, and shared ownership drive our success.
Own the Outcome. Hone the Craft.
We take pride in our work, sweat the details, and continuously raise the bar for excellence.
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