Senior Product Analyst / Data Scientist
Indexed description
Responsibilities
Product Analyst side
- Analyze funnels, cohorts, and product metrics (D1/D7/D30 retention, playtime, conversion, ARPDAU, LTV) across the entire portfolio
- Design and analyze A/B tests with genuine statistical rigor (power analysis, peeking effects, multiple comparison correction) — including declining tests that are poorly designed
- Build and maintain the company's reference dashboards (Looker)
- Inform kill/iterate/scale decisions for soft launches — your analyses commit real budgets
- Develop and productionize predictive models: LTV prediction, churn, player segmentation, anomaly detection
- Industrialize your analyses into versioned, tested, reproducible Python pipelines
- Build the company's AI agents: automated soft launch analysis, intelligent alerting, and natural-language interfaces to data (MCP, LLM + SQL)
- Contribute to the evolution of the data stack: modeling, quality, orchestration
- 5+ years of experience in data analytics or data science, including significant experience in mobile gaming or F2P apps — you know the industry's orders of magnitude without looking them up
- Technical excellence: expert SQL (window functions, query optimization on large volumes) and production-grade Python (pandas, scikit-learn, testing, packaging) — not only notebooks
- Solid and honest statistics: hypothesis testing, regression, causal inference — including the ability to recognize when the data does not support a conclusion, and to say so
- Demonstrated product sense: you can cite concrete decisions your analyses changed, along with their impact
- AI systems in production: analysis agents, text-to-SQL, RAG, or LLM pipelines — built by you, used by others, with an architecture you can explain in detail
- Command of gaming analytics platforms (GameAnalytics, Adjust/AppsFlyer) and a BI tool (Looker preferred)
- Fluent English required
Nice to have
- ML models running in production at scale (batch or real-time), with monitoring
- MCP servers or internal automation tools you have built
- Detailed knowledge of the F2P economy (ad waterfalls, mediation, IAP, pricing)
- Applied causal inference experience (uplift modeling, synthetic control)
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