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Data Scientist & Experimentation Analyst

ExecutivePlacements.com

Salary not specified
Nov 4, 2025
San Jose, CA, United States of America
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The client is seeking a Data Scientist & Experimentation Analyst to support the development and evaluation of ML-driven pricing and personalization solutions by providing data-driven insights and rigorous experimentation.

Requirements

  • Strong understanding of statistical methods, experiment design, and causal inference techniques.
  • Proficiency in Python for data manipulation & machine learning (Pandas, NumPy, sci-kit-learn).
  • Intermediate skills in SQL for data querying, including Window Functions, Joins, and Group By
  • Familiarity with classical ML techniques like Classification, Regression, and Clustering, using algorithms like XGBoost, Random Forest, and KMeans.
  • Experience with data visualization platforms (e.g., Tableau, Power BI, Matplotlib, or Seaborn).
  • Proficiency in designing and analyzing A/B and multivariate experiments, focusing on drawing actionable insights.
  • Experience working with large, complex datasets, including preprocessing, feature engineering, and encoding techniques.

Responsibilities

  • Design, execute, and interpret controlled experiments (e.g., A/B tests, multivariate tests) to evaluate the effectiveness of ML models and strategies.
  • Conduct exploratory data analysis (EDA), hypothesis testing, and statistical modelling to support ML and business objectives.
  • Assist ML Scientists in preparing data, engineering features, and evaluating models for pricing and personalization solutions.
  • Create dashboards and visualizations to track key metrics, experiment outcomes, and model performance.
  • Perform deep dives and provide actionable insights on specific datasets or business questions to inform strategic decisions.

Other

  • 4+ years in data science, experimentation analysis, or a related role supporting ML projects and experimentation.
  • Collaboration: Partner with ML Scientists, Data Engineers, and Product Managers to align on experimentation goals and ensure successful implementation of ML solutions.