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Manifest OS

Head of Data / Staff Data Engineer

Posted Yesterday
In-Office
New York City, NY, USA
250K-300K Annually
Senior level
In-Office
New York City, NY, USA
250K-300K Annually
Senior level
Own the company’s data platform architecture, reliability, governance, and roadmap. Lead a team while remaining hands-on with complex designs and queries. Drive tooling decisions, data modeling, orchestration, observability, identity resolution, canonical data models, and AI-ready data foundations. Ensure data freshness, correctness, lineage, access control, PII handling, and auditability while partnering with engineering, marketing, sales, and legal operations.
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About Manifest

Manifest OS is the leading AI-native company on a mission to replace the billable hour and make legal services more accessible for American businesses and consumers. We power the next generation of AI-native law firms with one unified global brand, a proprietary technology platform, and a centralized back office, enabling lawyers to eliminate the administrative burden and focus on delivering exceptional outcomes for their clients. Manifest OS has raised a $60M Series A from Menlo Ventures, Kleiner Perkins, First Round, and Quiet Capital.

About the Role

You'll own Manifest's data platform — its architecture, reliability, and direction — and lead the team that builds it. The platform works, but scaling to the next order of magnitude requires deliberate architectural decisions: case data spans two generations of systems, identity resolution stitches together five sources per person, and the warehouse now needs to power AI product features, not just dashboards.

You'll define what this platform looks like in two years, sequence a path to get there without a full rewrite, and keep the data trustworthy throughout. You'll report to the Director of Engineering and partner closely with Engineering, Marketing, Sales, and Legal Operations.

This is an in-person role - you'll be on-site at our NYC office 5 days a week.

What You’ll Do
  • Own the target-state data architecture — ingestion, modeling, semantic layer, and serving — with a sequenced roadmap and named trade-offs

  • Drive build-vs-buy and tooling decisions across ingestion, transformation, orchestration, and observability

  • Own data trust: make freshness, correctness, and lineage observable; enforce standards in CI

  • Maintain a single definitional layer so one metric means the same thing everywhere — BigQuery, HubSpot, board deck

  • Build governed foundations for AI features, including identity resolution and canonical entity models

  • Lead and grow the team while staying close enough to the code to review hard designs and complex queries

What We’re Looking For

Must-haves:

  • 8+ years in data engineering, including serving as architect — not just contributor — of a cloud data platform

  • Deep hands-on fluency with BigQuery (or Snowflake/Databricks), dbt, Python, and advanced SQL

  • Real production experience: your opinions on orchestration, idempotency, and testing came from being paged

  • Experience leading engineers formally or as a technical lead, with comfort in a player-coach role

  • Treats access control, PII handling, and auditability as core design requirements, not afterthoughts

Nice-to-haves:

  • Marketing attribution or multi-touch modeling across CRM, product, and clickstream data

  • Experience building data foundations for ML or LLM-based product features

  • Background in legal, healthcare, or fintech; early data hire experience at a high-growth company

This Is For You If…
  • You'd rather improve something real and working than build from an empty repo

  • You want your architecture to be load-bearing — decisions here affect ad spend, case staffing, and client trust

  • Translating between technical and business stakeholders energizes rather than exhausts you

This Is Not You If…
  • You want a purely strategic role — this team is small and you'll be in the code and the incidents

  • You need a clean slate — sequencing out of legacy systems is the job, not rewriting from scratch

  • Cross-functional prioritization conversations with marketing, sales, and legal ops drain you

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