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Head of Data - AngelList

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Job Title
Head of Data
Job Location
San Francisco, CA
Job Description

Why Join AngelList

We’re solving some of the hardest problems in venture capital and private markets. You’ll work with a team that values precision, urgency, and long-term thinking. If you want to shape how startups are funded and built, this is the place.

About AngelList

We exist to accelerate innovation by increasing the number of successful startups in the world. We do this by building the financial infrastructure that makes it easier for more people to invest in world-changing companies.

AngelList is the nexus of venture capital and the startup community. We support $171B+ in assets and have powered investments into over 13,000 startups—over 300 of which are unicorns. Today, 57% of top-tier U.S. VC deals involve investors on AngelList. While our scale is large, our ambition is larger.

If you're excited to build the future of private markets, come build with us.


About the Role

We're hiring a Head of Data to turn AngelList's data into an unfair advantage.

AngelList sits in a rare position. We support $171B in assets across 25,000+ funds and syndicates, with $80B+ moved across our banking infrastructure. 80% of the top 10 2025 Midas List VCs invest in funds on AngelList. Our network spans 2,300+ GPs and 72,000+ LPs, the largest in private markets, and we have over a decade of venture fund transaction data underneath it. We've reached $100M+ ARR with essentially zero marketing spend and we're ready to invest. The business is unusual: a marketplace, an investing platform, a banking partner, and a software + services business, all reinforcing each other. The data implications are extraordinary, and most of the interesting questions are still unanswered.

Those questions are the work. How do the business units actually compound on each other? What's the right attribution model when one product introduces a customer to another? What does incrementality look like when our channels are dominated by network and reputation rather than paid acquisition? What's the LTV of a fund manager vs. an LP vs. a banking customer, and how should that change where we invest?

Our data team spent the last year earning trust in the numbers: Snowflake live, pipelines reliable, a shared source of truth. That foundation is mostly there. What we want next is the layer on top: attribution we trust, incrementality we can measure, segmentations and forecasts that change how we invest, experimentation as default. You'll lead a small, senior team of three to start, and personally do a meaningful share of the work and shaping of the team. For a growth-focused data scientist ready to do both, there aren't many roles like it.

Responsibilities
  • Decision science. Own attribution, incrementality, LTV / CAC, customer segmentation, forecasting, and experimentation across our business units. Set the methodologies, defend them, and improve them as we learn.
  • Flywheel measurement. Build the analytical view of how our businesses (admin, Carry, Ark, Meridian) reinforce each other, where the flywheel is real, where it’s aspirational, and what investments accelerate it.
  • Experimentation. Make running good experiments the default for product, marketing, and growth, with the infrastructure and review process to back it up.
  • The data platform. Inherit a working platform with real gaps. Decide which gaps to fill, which to accept, and how to keep investing so the foundation grows with the demands you’re putting on it.
  • The team. Three people today, a mix of data engineering and analytics. Grow it deliberately. We expect early hires to be data scientists who reflect the bar you set, not headcount for its own sake.
  • Executive partnership. Be a thought partner to the CFO, CEO, and the GMs, in the room for capital allocation and GTM decisions, not summarizing them afterward.
  • What We’re Looking For
  • 8+ years in data science, decision science, or growth analytics, including hands-on practitioner work. At least 2 years leading teams.
  • Deep expertise in some combination of attribution, causal inference, experimentation, LTV / CAC, segmentation, forecasting, and marketplace measurement. Demonstrated, not aspirational.
  • Strong Python and SQL. You’ve built models recently enough to still be opinionated about how to build them.
  • Track record of changing executive decisions through analysis. You can point to specific calls you helped get right, and ones you got wrong, and what you learned.
  • Exceptional written communication. We expect to read what you write and act on it.
  • Maturity with the platform layer. You don’t have to be the deepest data engineer in the room, but you have to make good architectural calls and respect the work of the engineers on your team.
  • A genuine appetite for being a player-coach. If your career goal is to never write SQL again, this is the wrong role.
  • Marketplace, fintech, or financial services background is a bonus, not a requirement.
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    AngelList Headquarters Location

    San Francisco, CA

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    AngelList Company Size

    Between 200 - 1,000 employees

    AngelList Founded Year

    2010

    AngelList Total Amount Raised

    $170,200,000

    AngelList Funding Rounds

    View funding details
    • Series B

      $44,000,000 USD

    • Series B

      $100,000,000 USD

    • Series B

      $2,100,000 USD

    • Series A

      $24,000,000 USD

    • Seed

      $100,000 USD