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Senior Data Scientist

Owns analytics, experimentation, and measurement for HingeSelect's Visits and Discovery experience. Partners with Product/Engineering to diagnose bottlenecks, design experiments, model supply-demand dynamics, and build data architecture using Python/SQL/ML. Requires 5+ years in data science/product analytics.

165k – 247kSan Francisco, CAData ScienceHybrid5+ YOE

About the role

What You'll Accomplish

  • Build the measurement and experimentation foundation for HingeSelect's Visits and Discovery experience — from instrumentation design through causal analysis and metric reporting.
  • Diagnose conversion bottlenecks across the HingeSelect funnel (discovery, selection, scheduling, visit completion) and partner with Product to prioritize highest-leverage interventions.
  • Design and execute experiments with causal guardrails to measure HingeSelect's incremental impact while detecting and preventing cannibalization of existing digital PT engagement.
  • Model supply-demand dynamics — how provider capacity, geographic coverage, and member demand interact — to inform network strategy and capacity planning.
  • Define the data architecture for HingeSelect from scratch: event taxonomy, data models, and metric definitions that enable reliable downstream analysis and AI agent consumption.
  • Build and maintain dashboards and self-service tools that give Product, Engineering, and leadership real-time visibility into funnel performance and experiment results.
  • Advocate for upstream instrumentation best practices, working with Engineering to ensure events are captured server-side with consistent schemas and timestamps.
  • Apply machine learning and predictive modeling to forecast member behavior, segment demand, and identify high-value intervention points across the care selection journey.

Basic Qualifications

  • 5+ years of experience in Data Science, Product Analytics, or related fields.
  • 5+ years of experience with Python and SQL, with the ability to transform complex data into actionable insights.
  • Experience designing and analyzing A/B tests and other experimental frameworks.
  • Proven ability to translate complex data into clear, actionable insights and communicate findings effectively to both technical and non-technical stakeholders.
  • Experience building dashboards and reports for monitoring product or operational metrics using tools like Mode, Tableau, or similar.
  • Experience with productionalizing data models and ETL pipelines.

Preferred Qualifications

  • 1+ years of experience with machine learning and predictive modeling.
  • Bachelor's or Master's degree in a relevant field (Data Science, Computer Science, Engineering, Statistics, etc.).
  • Prior experience in healthcare, wellness, or digital health environments, particularly in fitness technologies or real-time feedback systems.
  • Knowledge of cloud infrastructure and tools such as AWS, Databricks, and Airflow.

Skills

PythonSQLdbtModeDatabricksAirflowStatsigAWSMachine LearningA/B TestingETLTableau

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