People Analytics Full Stack Developer
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Get Started FreeAbout interviewing at Apple
One of tech's least standardized loops: you interview for a specific team, and every stage belongs to it. Recruiter/hiring-manager screen, one to three 45–60 minute Coderpad coding screens, a system design round shaped by Apple's reliability and privacy constraints, and a behavioral round — then a panel debrief. There is no central question bank; questions map to the team's real stack.
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Summary
At Apple, our greatest resource is our people. The People Analytics team builds the data products that help Apple's HR organization make decisions with evidence: measuring how we recruit, develop, listen to and retain employees, and putting that insight in front of the teams and leaders who act on it. The work is small-team and high-ownership - the person who models the data is the same person who ships the dashboard and operates it in production.Description
This role builds and runs analytics products end to end: modeling data in Snowflake, developing Python web services and APIs, building dashboards that surface actionable insight, and automating deployment across Linux infrastructure. You will use agentic AI coding tools such as Claude Code as a primary means of delivery, running parallel sessions to design, build, test and ship - while holding the standards that generated code does not: sound architecture, data security, and catching the query that runs without error and returns the wrong number.Key Responsibilities
Design, develop and deploy reports, dashboards and analytics across the employee lifecycle, enabling data-driven decisions for business partners and leadership. Build and optimize data models, schemas and views in Snowflake and relational databases to support reliable, high-quality analytics products. Develop and maintain Python backends, APIs and web frontends that power internal people tools and employee-facing applications. Build and operate ETL and data-refresh pipelines between Snowflake and operational databases, including scheduling, incremental refresh, caching and data-integrity validation. Automate build, containerization, deployment and configuration management across Linux-based infrastructure. Deliver engineering work with agentic AI coding tools as the primary development method: scoping and decomposing tasks so several sessions can run in parallel, then reviewing and correcting the generated code before it ships. Establish and own metric definitions: determine how each measure is calculated, keep the same metric reporting identically wherever it appears, and validate figures against source data before release. Maintain the technical documentation and codebase context that keep a large reporting estate workable, for colleagues and for AI tooling alike. Re-engineer existing analytics and reporting systems to improve simplicity, standardization and security, alongside delivering new features. Partner with People Analytics colleagues and internal technology teams to deliver analytics solutions. This role works with colleagues in other regions, so occasional meetings outside standard working hours should be expected. Regular travel is not required.Minimum Qualifications
Bachelor's degree in Computer Science, Information Management Systems, Data Science, Software Engineering, or a related field. 7+ years of experience developing and maintaining analytics products, reports and dashboards, including dashboard visualization development. Deep SQL and Snowflake experience: designing schemas, optimizing queries, and building ETL pipelines including incremental refresh and caching strategies. Python experience spanning backend web services, APIs, and data-processing automation. Hands-on Linux experience operating servers unaided: working over SSH, running long-lived services behind a reverse proxy, and diagnosing problems with processes, networking, file systems and performance. Container experience covering image build and deployment, and troubleshooting networking, storage and runtime issues. Daily production experience with agentic AI coding tools such as Claude Code, including running parallel sessions and reviewing generated code to identify edge cases, incorrect output and unsound patterns before it ships. A track record of confirming data and system behavior by measuring against the live system rather than inferring it from documentation, naming or generated explanations. Experience working with employee data or other sensitive personal data under row-level security and data-access restrictions. Proven autonomy: experience owning delivery end to end with minimal direction, choosing the approach and making implementation decisions without escalation. Experience delivering to competing deadlines and shifting priorities without loss of data accuracy, and setting expectations with stakeholders on scope and timing. Flexibility to work across time zones, including meetings outside standard hours to reach colleagues and partners in other regions.Preferred Qualifications
Experience agreeing metric definitions with business partners and holding those definitions consistent across multiple reporting surfaces. Experience delivering on a shared data platform where pipeline changes are centrally owned: scoping a minimal change, evidencing it, and sequencing configuration and code releases. Experience working directly with senior business leaders: taking requirements first-hand, presenting data and findings, explaining caveats clearly to non-technical partners, and responding when the numbers are challenged. Familiarity with Python web frameworks such as Flask or FastAPI. Experience with Python data processing libraries such as NumPy and pandas, and awareness of data science and statistical analysis techniques. Experience building or operating services that make internal systems available to AI tooling, such as Model Context Protocol (MCP) servers.More engineering roles at Apple
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