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Principal Data Engineering Lead - Services Special Project

Apple
Posted a month ago, valid for a month
Location

Cupertino, CA, US

Salary

Competitive

Contract type

Full Time

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Sonic Summary

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  • Apple is looking for a Principal Data Engineer with a Master's Degree and at least 12 years of experience in data engineering.
  • The role involves leading the design, build, and operations of data processing systems while collaborating with various business groups within Apple.
  • Candidates should have deep expertise in ETL/ELT, data architecture, and applied ML pipelines, along with proficiency in SQL/NoSQL databases and distributed data processing frameworks.
  • Experience with big data lake architectures, containerization, and orchestration tools is essential, as well as familiarity with data governance and privacy regulations.
  • The salary for this position is competitive and commensurate with experience, reflecting the advanced skills required for the role.
At Apple, great ideas have a way of becoming phenomenal products, services, and customer experiences very quickly. Our team is building a massive, real-time platform that transforms continuous streams of multimodal data (including structured, image, and log data) into an intelligent, searchable foundation. We are seeking a Principal Data Engineer to lead and drive not only our team's data processing systems, but also to partner at a larger scale, coordinating and synching strategically with other business groups and organizations within Apple.

Description


We are seeking a Principal Data Engineering Lead with deep expertise in ETL/ELT, data architecture, and applied ML pipelines to drive the design, build, and operations of this infrastructure. As a key member of our team, you will be responsible for driving critical decisions and operations across the entire system while aligning strategically across Apple.

Minimum Qualifications


Masters Degree 12+ years of experience in data engineering, including building and maintaining large-scale ETL/ELT data pipelines Proficiency in data modeling, especially dimensional modeling, and designing schemas optimized for analytics and reporting Experience with leveraging databases including SQL/NoSQL Databases (including Postgres / Cassandra / Redis) Strong experience with distributed data processing frameworks including Apache Spark Strong experience with Parallel processing frameworks: BigTable/Hadoop Strong software engineering fundamentals and proven experience with Scala, Java Hands-on experience with Apache Kafka, Iceberg, and Flink. Experience with workflow orchestration tools including Apache Airflow and Beam Experience with AWS: e.g., S3, EMR, Lambda, Glue, Redshift, BigQuery, Kinesis, or similar services Experience with Analytics frameworks including Trino (Presto, BigQuery, Snowflake) Hands-on experience with big data lake architectures Experience with containerization and orchestration (Docker, Kubernetes/EKS) and CI/CD tooling including Jenkins Experience in Python and PySpark Familiarity with graph databases such as TigerGraph Experience building pipelines that process multimodal data (structured and image) and integrate ML model inference - including LLMs and embedding models - for data enrichment and transformation Hands-on experience deploying, serving, and optimizing LLMs or ML models directly in the production, inference runtimes/compilers (ONNX Runtime, TensorRT/TensorRT-LLM), and serving frameworks (Triton, vLLM, TorchServe or similar). Experience tuning batching, KV-cache, and GPU utilization for low-latency, high-throughput real-time inference in a data pipeline Knowledge of data governance principles, data security best practices, and data privacy regulations Proven experience delivering a consumer-oriented solution by participating at every stage of the development life-cycle. Excellent communication skills and a collaborative mindset with past experience presenting and partnering with VP and C level decision makers.

Preferred Qualifications


Experience with data versioning tools and frameworks (e.g., DVC, Delta Lake) Experience storing/serving embeddings (e.g., pgvector, Milvus, FAISS)



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