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Director of AI, Dating Outcomes

Match Group New York, New York

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Ghost-risk verdict

Some ghost-posting signals

  • open for 75 days (60–89 days is elevated risk)
  • reposted 1× (reposts correlate with ghost postings)
  • removed from the board and reposted at least once
  • 91 open roles at this company in 30 days (mass-hiring blitz)

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About the role

Responsibilities

Strategy and Vision: Own the AI strategy for dating recommendations across the full journey, from first candidate to last date. Build the frameworks to reason rigorously through ecosystem tradeoffs where a win for one cohort reshapes another, and set a vision ambitious enough that the org wants to chase it.

Cross-Functional and Industry Leadership: Partner closely with other product groups to integrate AI capabilities across the product and shape roadmap decisions you do not own. Communicate honestly with executive leadership on strategy, tradeoffs, and progress. Own budget and investment strategy for the area, and represent Hinge externally through writing, talks, and community.

Technical Leadership: Steer real-time, personalized recommendation systems that reduce ratings per exchange and drive better matches. Bring Generative AI to dating outcomes in ways that are differentiated, authentic, and grounded in how people actually connect.

Responsible AI: Hold the bar on scalability, resilience, and rigorous evaluation for both performance and bias.

Team and Organizational Development: Structure and scale the team for both deep execution and long-horizon bets. Develop emerging leaders, invest in succession across IC and leadership tracks, and build a culture where rigor, inclusion, and performance reinforce one another.

Execution Excellence: Drive predictable delivery, balancing urgent risk response with long-term platform investments. Establish scalable operating rhythms for planning, technical reviews, and incident learnings.

What We're Looking For

10 or more years across data science, applied ML, and software engineering, with 6 or more years in AI or engineering leadership defining strategy, not just managing execution.

A track record of leading real-time, personalized recommendation systems in production, including the relevance, fairness, and scale tradeoffs that carry real consequences.

Demonstrated success scaling ML or AI teams and developing technical leaders who carry the work over years, not a single launch.

Deep technical fluency across ML, RL, Generative AI, and MLOps, with the communication skills and executive presence to represent AI strategy at the highest levels of the organization.

A degree in Computer Science, Machine Learning, or a related quantitative field. A PhD is a plus, not a requirement.

What Will Set You Apart

Experience building AI systems in a two-sided or constrained marketplace, where optimizing for one group shifts outcomes for another and the right answer is rarely obvious.

A history of deploying Generative AI thoughtfully in user-facing experiences, not as a trend to follow.

External presence through publishing, speaking, or community contribution that reflects genuine intellectual engagement with the field.

Prior work in a domain where user outcomes are high-stakes and hard to measure, whether health, education, finance, or something comparably consequential.

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