Data Engineer - Capacity Planning - Apple Data Platform
✨ AI Summary
Apple, a leader in consumer electronics and AI, is hiring a Data Engineer for its Data Platform team to build capacity planning pipelines for cloud and AI infrastructure. The role focuses on integrating telemetry, workload, and financial data to optimize GPU and TPU utilization. Tech stack includes SQL, Python, ETL/ELT patterns, and cloud platforms like AWS, GCP, or Azure. Requires 3+ years of experience in data engineering or analytics, with strong skills in large datasets and infrastructure cost modeling.
Help us build the data foundation for capacity planning across Apple’s data and AI infrastructure. The Apple Data Platform organization is looking for a Data Engineer to build data pipelines, models, and analytical tools that help us understand infrastructure demand, utilization, capacity, and cost. The role will initially focus on third-party cloud infrastructure including GPUs, TPUs, compute, and storage and will expand over time to Apple-owned infrastructure. You will work closely with engineering, CIBO, Finance, and Procurement to help Apple make better infrastructure planning and investment decisions.
As a Data Engineer focused on Capacity Planning, you will bring together infrastructure telemetry, workload demand, capacity commitments, and financial data into trusted datasets and data products. You will build the pipelines and analytical foundations used to understand current utilization, forecast future needs, identify capacity gaps, and improve infrastructure efficiency. You will partner with engineering and business teams to turn complex infrastructure data into actionable insights.
Minimum Qualifications
- 3+ years of experience in Data Engineering, Analytics Engineering, Infrastructure Analytics, or a related field.
- Strong SQL skills and experience working with large datasets.
- Experience with Python or another language used for data processing and automation.
- Experience building data pipelines, data models, and analytical datasets.
- Understanding of ETL/ELT patterns, data quality, and pipeline reliability.
- Experience working with cloud billing and usage data from AWS, GCP or Azure
- Proven ability to build data models that reconcile to a financial source of truth
- Understanding of AI and ML inference workloads and how model serving drives compute cost
- Strong analytical and problem-solving skills.
- Ability to work effectively with both technical and non-technical partners.
- Bachelor’s degree in Computer Science, Engineering, Data Science, Statistics, Mathematics, Economics, Finance, or a related quantitative field, or equivalent practical experience.
Preferred Qualifications
- Experience with infrastructure capacity planning, forecasting, or resource-management data.
- Experience working with GPU, TPU, CPU, storage, or cloud infrastructure.
- Experience with AWS, GCP, or similar cloud platforms.
- Understanding of AI/ML infrastructure and accelerator utilization.
- Experience with infrastructure cost, billing, or utilization datasets.
- Experience with technologies such as Spark, Trino, Airflow, Kafka, or similar data-platform tools.
- Experience with Tableau or other visualization platforms.
- Familiarity with infrastructure economics, cloud commitments, or capacity optimization.
- Experience partnering with Engineering, Finance, or Procurement on infrastructure planning.
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