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Staff Engineer – Data Platform

Job in Seattle, King County, Washington, 98127, USA
Listing for: Jobtailor
Full Time position
Listed on 2026-07-20
Job specializations:
  • Software Development
    Data Engineering
Salary/Wage Range or Industry Benchmark: 180000 - 240000 USD Yearly USD 180000.00 240000.00 YEAR
Job Description & How to Apply Below

Responsibilities

  • Be the tech‑lead and architect for Haus's data ingestion and normalization platform — ad network APIs (Google, Meta, Tik Tok, Amazon, etc.), Fivetran connectors, and customer warehouses (Snowflake, Big Query) — balancing throughput, cost, and reliability.
  • Design and lead implementation of high‑leverage systems: schema evolution, data contracts, DQ frameworks, idempotent backfills, lineage, time‑travel, data reproducibility and pipeline observability.
  • Drive architectural decisions in our GCP / Big Query / dbt stack — build vs. buy, what to standardize, what to deprecate — and write the design docs that align Engineering, DS, and Product teams.
  • Raise the engineering bar through code review, design review, and mentorship; level up Senior engineers and unblock the team on the hardest problems.
  • Partner with data science to translate fuzzy modeling and research needs into pipeline contracts and SLAs that downstream teams can trust.
  • Own incident response and post‑mortems for critical pipeline failures; turn one‑off fires into systemic fixes.
  • Drive design and implementation of AI (Agentic) workflows for data quality and analytics.
  • Influence the broader engineering org's data strategy.
Requirements
  • 10+ years of software engineering experience, with at least 4 years building production data platforms at meaningful scale (terabytes/day, hundreds of pipelines, or comparable).
  • Track record of Staff‑level technical leadership: setting direction across multiple work streams, writing design docs others build from, and mentoring senior engineers.
  • Deep expertise in Python and SQL/dbt, with strong fluency in a modern orchestrator (Dagster, Airflow, Temporal, etc.) and a cloud data warehouse (Big Query, Snowflake, etc.).
  • Demonstrated ownership of a non‑trivial data platform — schema design, schema evolution, data quality, lineage, cost, and reliability — not just writing pipelines, but designing the system the pipelines live in.
  • Strong product judgment — comfortable working with DS, ML, or analytics consumers and translating their needs into clean data contracts.
  • Excellent written and verbal communication; able to defend technical decisions to engineering, product, and exec stakeholders.
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