Data Science Analyst Jobs in San Francisco, CA
Data Science Analyst jobs in San Francisco are in high demand, concentrated in the Financial District, SoMa, and Mission Bay across technology, fintech, and life sciences. Employers hiring right now include Lyft, Stitch Fix, and Adobe. Find a role that fits below and apply directly.
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About Stitch Fix, Inc.
Stitch Fix (NASDAQ: SFIX) Stitch Fix is redefining retail by combining human creativity with advanced data science and Generative AI. As we build the future of personalized shopping, we're equally committed to building yours. We believe in investing in our team as much as our technology. Join us to be a trendsetter in the industry and help us redefine what's possible for our clients, while we help you reach your full potential.
About the Role
The Client Experience Product Algorithms team is responsible for the machine learning, AI, experimentation, and product analytics capabilities that power personalized experiences for Stitch Fix clients and stylists. Partnering across Product, Engineering, Design, Styling, Marketing, Merchandising, Finance, Enterprise Analytics, Data Platform, and DSN, the team translates data and algorithms into measurable business impact.
As Director, Product Algorithms, you will lead the strategy, execution, and people behind our Growth, Styling, and Fix & Freestyle Algorithms portfolios. You'll define how AI, machine learning, experimentation, and analytics shape the future of personalized shopping while building the operating discipline, technical excellence, and cross-functional alignment needed to deliver scalable business results.
Responsibilities
- Lead the Product Algorithms portfolio across Growth, Styling, and Fix & Freestyle, setting strategy and driving measurable outcomes across acquisition, engagement, retention, styling quality, Fix, Freestyle, outfitting, and related commerce experiences.
- Define the vision and roadmap for applying data science, machine learning, AI, experimentation, and product analytics to improve client experiences, stylist effectiveness, and business performance.
- Drive innovation by identifying, evaluating, and scaling modern AI, machine learning, personalization, and experimentation techniques that create meaningful impact while balancing technical feasibility, execution capacity, and business priorities.
- Strengthen organizational effectiveness by improving planning, prioritization, experimentation practices, product analytics capabilities, operational readiness, incident management, and cross-functional decision making across the portfolio.
- Build and develop a high-performing organization of managers and senior individual contributors, fostering technical excellence, strong product leadership, accountability, and collaborative partnerships while representing Product Algorithms with executive stakeholders.
How AI and Tools Show Up in Your Day-to-Day Work
- Use AI-powered tools (such as ChatGPT, GitHub Copilot, and other emerging technologies) to improve decision making, productivity, communication, and operational efficiency.
- Leverage experimentation platforms, analytics tools, machine learning infrastructure, and product development systems to guide roadmap decisions and measure business impact.
- Continuously evaluate and adopt new AI capabilities, technologies, and ways of working that improve team effectiveness and accelerate innovation.
About You
You are a strategic technical leader who combines deep expertise in machine learning and AI with exceptional product thinking, organizational leadership, and business judgment. You thrive in highly collaborative environments, enjoy solving ambiguous problems, and know how to translate emerging technologies into measurable customer and business outcomes.
Requirements
- Bachelor's degree in Computer Science, Data Science, Statistics, Engineering, Mathematics, or a related quantitative field; advanced degree preferred.
- 10+ years of experience in data science, machine learning, experimentation, product analytics, AI, or algorithmic product development, including 5+ years leading teams and experience managing managers or senior technical leaders.
- Demonstrated success defining strategy and delivering production machine learning, AI, personalization, or experimentation capabilities that drive measurable product and business outcomes.
- Strong technical fluency across modern machine learning, generative AI/LLMs, experimentation methodologies, product analytics, and production algorithmic systems.
- Experience building cross-functional partnerships with Product, Engineering, Design, Analytics, Data Platform, Marketing, Merchandising, Finance, and executive stakeholders.
- Exceptional strategic thinking, communication, prioritization, problem-solving, and organizational leadership skills, with the ability to influence across technical and non-technical audiences.
- Experience using AI tools (such as ChatGPT, GitHub Copilot, or similar technologies) to improve productivity, decision making, collaboration, and the quality of work.
- This position requires the ability to sit for extended periods of time, use a computer and standard office equipment, and communicate effectively in both written and verbal formats.
Nice to Have
- Advanced degree (MS or PhD) in Computer Science, Machine Learning, Statistics, Operations Research, Engineering, or a related field.
- Experience leading AI- or ML-driven consumer products within e-commerce, marketplaces, retail, recommendations, personalization, or digital consumer experiences.
- Experience building or evolving experimentation platforms, product analytics capabilities, or AI governance and operational excellence practices.
- Familiarity with large-scale recommendation systems, ranking models, generative AI applications, causal inference, optimization, or reinforcement learning.
- Experience leading organizations through significant technical transformation, organizational scaling, or AI adoption initiatives.
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See All 106+ Data Science Analyst Jobs in San Francisco
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Find Data Science Analyst JobsData Science Analyst Job Market in San Francisco
Who's Hiring
- Lyft11

- Stitch Fix11

- Adobe6

- Figma6

- Gusto6

Top Industries Hiring
- Technology & Software45
- Retail6
- Fintech6
- Science & Research6
- Marketing & Advertising6
Data Science Analyst Jobs in San Francisco: Frequently Asked Questions
How do I get a data science analyst job in San Francisco?
Focus your search on San Francisco's dominant hiring sectors: enterprise technology companies in SoMa, fintech and payments firms in the Financial District, and biotech employers anchored in Mission Bay. Roles here reward candidates who combine strong Python or SQL skills with experience in A/B testing, product analytics, or ML pipeline work. Tailoring your portfolio to the specific business domain of each employer gives you a clear edge in this market.
Which companies hire data science analysts in San Francisco?
San Francisco data science analyst roles are posted by Lyft, Stitch Fix, and Adobe and others right now, based on current listings on Migrate Mate as of August 2026. San Francisco's hiring mix is broad, drawing from large tech platforms, early-stage startups, and established financial institutions all operating within the city.
Are there remote data science analyst jobs in San Francisco?
Yes, data science analyst work is well-suited to remote and hybrid arrangements given its analytical and desk-based nature. About 85% of data science analyst openings tied to San Francisco are remote or hybrid as of August 2026, reflecting how common flexible work has become in this sector. Modeling, reporting, and pipeline development are the tasks most frequently performed fully remotely in San Francisco-based roles.
How can I get a data science analyst job in San Francisco with little or no experience?
The most realistic entry path in San Francisco is targeting junior analyst or data analyst roles at mid-size tech companies and fintech startups in SoMa or the Financial District, where teams tend to value demonstrated project work over years of experience. Building a public portfolio on GitHub with real datasets, contributing to open-source projects, and pursuing contract or internship roles at Bay Area companies are concrete steps that hiring managers here notice. Entry-level business intelligence analyst and analytics engineer titles are lateral moves that can open the door quickly.
Which industries hire the most data science analysts in San Francisco?
The sectors hiring the most data science analysts in San Francisco are Technology & Software, Retail, and Fintech, based on current listings on Migrate Mate as of August 2026. San Francisco's concentration of technology headquarters, venture-backed startups, and regulated financial firms creates consistent, overlapping demand for data science talent across all three sectors.
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