Senior Data Scientist leading customer analytics and measurement for Staples. Collaborating across teams to shape customer engagement strategies.
Responsibilities
Design and maintain customer segmentation frameworks using large-scale transactional, behavioral, and engagement data.
Develop segmentation strategies based on lifecycle stage, purchase frequency, basket composition, category affinity, promotion responsiveness, and channel preference.
Build and deploy personalization and targeting models (e.g., propensity, uplift, ranking) to improve engagement, conversion, and retention across marketing and customer touchpoints.
Translate analytical and model outputs into actionable decisioning logic.
Design, analyze, and interpret experiments and quasi-experiments across marketing, merchandising, and customer engagement use cases.
Apply causal inference techniques such as A/B testing, difference-in-differences, matching, uplift modeling, and other incrementality approaches.
Support experiments conducted at multiple levels, including customer-, geo-, and store-level designs, while accounting for seasonality, spillover effects, and operational constraints.
Partner with stakeholders to ensure tests are well-powered, statistically sound, and aligned with business objectives.
Build and evolve omnichannel measurement frameworks, including multi-touch attribution and incrementality models, to assess the impact of customer and marketing touchpoints.
Measure the effectiveness of digital and offline channels, such as paid media, email, loyalty programs, promotions, and in-store activity.
Clearly communicate model assumptions, limitations, and tradeoffs to technical and non-technical audiences to support decision-making.
Collaborate with Analytics and Data Engineering teams to define clean, reliable, and scalable data models at the SKU, transaction, store, and customer level.
Productionize analytical models and data products using best practices for code quality, versioning, validation, monitoring, and retraining.
Write maintainable, well-documented code and contribute to shared data science tooling and standards.
Act as a senior individual contributor and technical leader, setting a high bar for analytical rigor and statistical judgment.
Review and provide feedback on analyses and models developed by other data scientists.
Proactively identify opportunities where data science can improve customer experience, marketing efficiency, and commercial outcomes.
Influence strategy with data-driven insights.
Requirements
7+ years experience in Data Science, Analytics Engineering, ML Engineering, or related roles.
Strong foundation in statistics, probability, experimental design, and causal inference.
Demonstrated experience with customer analytics, including segmentation, personalization, or marketing measurement.
Hands-on experience designing and analyzing experiments and observational studies in real-world business settings.
Proficiency in Python and SQL.
Experience deploying models into production.
Ability to communicate complex technical concepts clearly to non-technical stakeholders.
Benefits
Generous amount of paid time off and bonus plan.
401(k) plan with a company match, medical, dental, vision, life and disability insurance, and many more benefits.
Associate store discount and more perks (discounts on mobile plans, movie tickets, etc.).
On-site, discounted childcare, fitness center and dry cleaners in Framingham, MA corporate office.
Job title
Senior Data Scientist – Customer Analytics, Measurement
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