Job Description
Responsibilities
- Be the analytical thought partner for lifecycle, CRM, and retention strategy.
Partner closely with PMM and Product to identify the biggest opportunities to improve retention, re-engagement, and long-term user value. Use cohort analysis and lifecycle insights to help prioritize where the business should invest. - Own measurement strategy for lifecycle programs and experiments.
Define success metrics and measurement frameworks for CRM and lifecycle initiatives. Design, execute, and evaluate A/B tests and other experiments to understand what drives retention, engagement, and sustained behavior change. - Drive cohort-based insights that improve user retention.
Analyze user behavior across lifecycle stages to identify patterns, drop-off points, and high-impact levers for retention. Go beyond reporting to uncover actionable insights that inform targeting, messaging, timing, and program design. - Support operational excellence in experimentation and reporting.
Be self-sufficient in setting up analyses, monitoring experiment performance, identifying issues, and delivering clear recommendations. Build scalable dashboards, reporting cadences, and frameworks that enable fast, high-quality decision-making. - Communicate insights clearly and influence through data.
Translate complex analysis into concise, compelling narratives for technical and non-technical audiences. Present findings and recommendations in a way that drives alignment across PMM, Product, and leadership stakeholders.
What we’re looking for
- Strong lifecycle / CRM / retention analytics experience.
8+ years of experience in analytics in a fast-paced, data-driven environment, ideally in consumer tech. Strong background in lifecycle marketing, CRM analytics, retention, engagement, cohort analysis, and user behavior measurement. - Deep experimentation and measurement capability.
Proven experience designing, executing, and interpreting A/B tests and other growth experiments. Able to independently define metrics, assess results, identify tradeoffs, and make clear business recommendations. - Expert SQL skills.
Highly proficient in SQL and comfortable using data independently to answer business questions and support experimentation. Python is helpful but not required. - Operational and self-sufficient.
Comfortable owning analyses end-to-end, working in self-serve environments, and moving from problem definition through implementation support, measurement, and recommendation. - Excellent communication and presentation skills.
Able to synthesize complex findings into clear takeaways for a wide range of audiences. Comfortable influencing cross-functional teams and presenting insights and recommendations to senior stakeholders. - Cross-functional partnership strength.
Proven ability to work closely with PMM, Product, and Engineering. Collaborative, low ego, and effective at aligning partners around data-informed decisions. - Retention-oriented mindset.
Understands how to evaluate user behavior over time, identify retention drivers, and distinguish short-term engagement lifts from sustained long-term impact. - AI-augmented analytical workflow.
Demonstrated ability to use AI tools to improve analytical efficiency, synthesis, or workflow speed, while maintaining sound judgment, validating outputs, and owning final recommendations. - Graduate degree in a quantitative field such as mathematics, statistics, computer science, engineering, or equivalent practical experience.
Are you interested in this position?
Apply by clicking on the “Apply Now” button below!
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