Senior Data Engineer
VolleySan FranciscoPosted 5 March 2026
Job Description
Senior Data Engineer
ABOUT US
Weekend https://www.weekend.com/ (formerly Volley https://www.volleygames.com/) is the leading developer of voice AI games for smart TVs. Our games attract millions of users every month, with family favorites like Jeopardy!, Song Quiz, CoComelon: Sing and Play with JJ, and Wheel of Fortune.
We believe voice interfaces will become the main way people access entertainment in their living rooms, kitchens, bedrooms, and cars. We’re building a bundled subscription product similar to Netflix or Spotify for the emerging category of “AI-powered games.”
Weekend was founded by Max Child and James Wilsterman in 2024. The founders went Y Combinator in 2018 and landed a spot on the 2022 YC Top Companies List. We’re a quickly-growing team headquartered in Union Square, San Francisco.
ROLE SUMMARY
Weekend is seeking our first Data Engineer to build the foundation for production-grade data infrastructure and unlock the next phase of our growth. You'll own end-to-end data pipelines for marketing attribution, design scalable orchestration patterns, and establish the reliability standards that turn growth data into a dependable system. This is a high-impact opportunity to create durable infrastructure from the ground up and materially improve marketing efficiency.
WHAT YOU'LL DO AT WEEKEND
- Build and own end-to-end data pipelines, including attribution and third-party enriched data sources (ingestion → orchestration → warehouse → consumption).
- Establish production-grade reliability standards: monitoring, alerting, SLAs, observability, runbooks, and incident response.
- Design scalable patterns for handling late/out-of-order data, backfills, historical consistency, and data quality.
- Implement environment separation (dev/stage/prod), CI/CD for pipelines, and data contracts/validation frameworks.
- Collaborate with Data, Growth, and Engineering teams to define data requirements and enable confident decision-making.
- Lay the groundwork for unified attribution and incrementality frameworks that drive marketing spend optimization.
- Turn today's brittle, ad-hoc pipelines into production-grade systems that increase velocity and reduce fire drills.
WE'RE EXCITED ABOUT YOU BECAUSE YOU HAVE
- 5+ years of data engineering experience with a proven track record of building reliable production pipelines.
- Deep expertise with orchestration tools (Airflow, Prefect, or Dagster) including scheduling, retries, alerting, and SLAs.
- Strong proficiency in Python and SQL, with experience building ELT/ETL pipelines at scale
- Hands-on experience with modern data warehouses (Snowflake, BigQuery, or Redshift).
- Deploying and operating pipelines in cloud (IAM, networking basics, secrets, CI/CD).
- Track record of improving data reliability: handling schema drift, late data, backfills, and operational incidents.
- Experience making data production-ready with proper monitoring, documentation, and ownership.
BONUS POINTS
- Experience with marketing attribution or growth analytics pipelines.
- Background in analytics engineering (dbt, SQLMesh, Dataform) or strong understanding of data consumer needs.
- Gaming or entertainment industry experience.
- Early-stage startup experience building with limited resources.
- Familiarity with observability tools.
OUR STACK
- Snowflake
- Tableau, Amplitude
- dbt, Airflow, Dagster
- Segment, Fivetran
- Languages: Python, SQL
THE HIRING PROCESS
- Stage 1 (Preliminary Video Call): with a member of our Recruitment team
- Stage 2 (Hiring Manager + Technical Call): A call with the team's Hiring Manager followed by a technical session with one of our Analytics Leads.
- Stage 3 (Onsite Interview): with various partners and team members
- Stage 4 (Founder Chat) with our Founders
As an AI company, we’re a huge believer in the value of AI tools. That being said, the interview process is intended as a conversation - we want to get to know you and your experience. Please ref ... (truncated, view full listing at source)
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