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Zipline
Actively hiring
Operations Data Scientist – Strategic Operations
- Workplace
- On-site
- Commitment
- Full-time
- Seniority
- Mid-Level
- Salary
- $140,000 - $210,000/yr
- Posted
Location
South San Francisco, United States
As an Operations Data Scientist, you will develop predictive models, optimization algorithms, and analytical frameworks that drive operational decision-making across Zipline's global network. You will work at the intersection of data science, operations research, logistics, and business strategy to improve network performance, forecast demand, optimize resource allocation, and identify opportunities to scale efficiently. This role involves building models that directly influence business outcomes and partnering with various teams to guide strategic decisions.
Responsibilities
- Develop forecasting models for operational demand, capacity, labor requirements, inventory, and network utilization.
- Build optimization models that improve resource allocation, staffing, maintenance planning, and operational efficiency.
- Design and analyze experiments to evaluate operational initiatives and process changes.
- Create predictive models that identify operational risks, bottlenecks, quality issues, and reliability trends.
- Develop simulation models to evaluate network expansion scenarios and operational strategies.
- Partner with Operations, Engineering, Product, Supply Chain, and Finance teams to guide strategic decisions.
- Build production-ready analytical tools and data products used by operational teams.
- Establish advanced operational metrics and measurement frameworks.
- Communicate complex analytical findings to technical and non-technical stakeholders.
- Support long-term planning through scenario analysis and decision modeling.
Requirements
- 3–7 years of experience in Data Science, Operations Research, Analytics, Applied Statistics, Industrial Engineering, or a related field.
- Strong proficiency in Python.
- Advanced SQL skills.
- Experience with machine learning, statistical modeling, forecasting, and experimentation.
- Experience with optimization techniques such as linear programming, mixed-integer optimization, simulation, or network modeling.
- Strong knowledge of statistical inference and experimental design.
- Experience building analytical solutions that influence operational decisions.
- Ability to explain complex technical concepts to business stakeholders.
Nice to have
- Experience in logistics, transportation, aviation, robotics, autonomous systems, manufacturing, or supply chain operations.
- Experience deploying models into production environments.
- Experience with cloud data platforms and modern data stacks.
- Familiarity with geospatial analytics and network optimization.
- Master's or PhD in Statistics, Operations Research, Industrial Engineering, Applied Mathematics, Computer Science, or related disciplines.
Benefits
- The starting cash range for this role is $140,000-$210,000. Please note that this is a target, starting cash range for a candidate who meets the minimum qualifications for this role. The final cash pay for this role will depend on a variety of factors, including a specific candidate's experience, qualifications, skills, working location, and projected impact. The total compensation package for this role may also include: equity compensation; overtime pay; discretionary annual or performance bonuses; sales incentives; benefits such as medical, dental and vision insurance; paid time off; and more.