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Product Manager, Data, New York

Reflexivity
New York, USAfull_timePosted 27 May 2026

About the role

<h2><strong>About Reflexivity</strong></h2> <p>Reflexivity builds an AI-native investment analysis platform for institutional investors, combining trusted financial data, knowledge graphs, document intelligence, and explainable AI to surface actionable insights instead of noise. Alfred, our financial reasoning engine, helps investment teams move from question to evidence-backed analysis faster - across research, screening, portfolio insights, scenario analysis, and partner integrations.</p> <h2><strong>Why this role exists</strong></h2> <p>Our data squad sits at the center of some of the company's most important relationships with major partners. Reflexivity consumes partner data across pricing, M&amp;A, corporate events, fundamentals, ownership, news, and text documents - and also packages Reflexivity capabilities back into partner products, improving their surfaces with the intelligence we have built.</p> <p>The PM who built this motion is leaving for business school. We are looking for a sharp, technically fluent product owner to take it over, raise the bar, and keep the system scaling.</p> <h2><strong>What you'll own</strong></h2> <p>You will lead the data squad - four engineers, two Python and two Golang - and act as the day-to-day product owner for the data and product flows between Reflexivity and major partners.</p> <p>The work splits roughly two ways, and today it leans outbound:</p> <ul> <li><strong>Outbound, the majority of the role today:</strong> Take capabilities built inside Reflexivity and ship them into partner products. You will work closely with partner product and engineering teams to decide what to integrate, map their constraints to ours, and get production-grade functionality live inside someone else's environment.</li> <li><strong>Inbound:</strong> Keep refining how Reflexivity ingests, models, and uses partner data on our own platform. You will own data-model mapping, business logic, and the QA bar. Near-term examples include ingesting MCP servers, moving select feeds from APIs to FTPs, sharpening entity resolution and coverage universes, and continuing to find efficiencies in high-volume data workflows.</li> </ul> <h2><strong>A typical week</strong></h2> <ul> <li>Run a working session with a partner engineering team to align on schema mapping for a new dataset</li> <li>Write a crisp spec for engineers on a corporate-actions edge case</li> <li>QA last week's release against ground truth and decide what ships versus what holds</li> <li>Partner with GTM on how to explain a coverage universe to clients</li> <li>Use AI tooling such as Cursor, Claude, or Windsurf to prototype business logic before handing it to engineering</li> &l

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Reflexivity

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