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Senior Data Science Manager - Worldwide Product Marketing

Apple, Inc.Cupertino, CA🇺🇸United StatesPosted 12 Aug 2026

Quick Overview

Work Type
Hybrid
Level
Mid Senior

Job Description

As a Senior Data Science Manager, you will lead and grow a high-performing team of data scientists driving analytics, experimentation, modeling, and data-driven insights that shape business strategy and product experiences. Operating at both the strategic and execution levels, you will set the team's analytical vision and roadmap while staying close enough to the work to guide modeling, machine learning, and production readiness. As a trusted advisor to leadership, you will bring clarity to complex problems and influence decisions with evidence-based recommendations.

Description

Lead data science initiatives end-to-end-from scoping and data prep to modeling, visualization, and delivery

Provide technical direction and review analytical approaches, ML models, and dashboards

Set standards for code and data quality, reproducibility, and production readiness, partnering with Engineering and ML teams on scalable solutions

Champion the responsible use of LLMs and AI-assisted tooling to accelerate insights, visualization, and modeling

Set the analytical vision and multi-quarter roadmap, aligned to business priorities and Apple's broader goals

Prioritize competing initiatives, balancing quick wins against long-term platform and capability investments

Anticipate where the discipline is heading-including AI/LLM and agentic workflows-and shape the team's capabilities accordingly

Translate business questions into analytical frameworks, and analytical results into actionable decisions

Serve as the primary thought partner for Finance, Marketing, Engineering, Product, and cross-functional stakeholders

Minimum Qualifications

10+ years of experience in data science, analytics, or applied machine learning

2+ years leading, mentoring, and scaling data-focused teams

Bachelor's degree in Computer Science, Statistics, Applied Math, Engineering, or a related field

Preferred Qualifications

Strong foundation in statistics, experimentation design, causal inference, and ML methodologies

Proficiency in SQL and Python

Experience with large, complex datasets, data pipelines, and production-level analytics systems

Proven ability to drive measurable business impact through data and automation

Exceptional communication skills, able to influence technical and non-technical stakeholders

Ability to operate effectively in ambiguous, complex environments and set clear direction

Skills

Python
SQL
Machine Learning
LLM

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