Principal Data Engineering Lead - Services Special Project

Cupertino, CA, US • Posted 21 hours ago • Updated 10 hours ago
Full Time
On-site
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Streaming
  • Data Architecture
  • Data Engineering
  • ELT
  • Data Modeling
  • Dimensional Modeling
  • Reporting
  • SQL
  • NoSQL
  • Database
  • PostgreSQL
  • Apache Cassandra
  • Redis
  • Data Processing
  • Apache Spark
  • Parallel Computing
  • Apache Hadoop
  • Software Engineering
  • Scala
  • Java
  • Apache Kafka
  • Apache Flink
  • Workflow
  • Apache Airflow
  • Amazon Web Services
  • Amazon S3
  • Electronic Health Record (EHR)
  • Amazon Redshift
  • Amazon Kinesis
  • Analytics
  • Snow Flake Schema
  • Big Data
  • Orchestration
  • Docker
  • Kubernetes
  • Continuous Integration
  • Continuous Delivery
  • Jenkins
  • Python
  • PySpark
  • Graph Databases
  • Machine Learning (ML)
  • Caching
  • GPU
  • Real-time
  • Extract
  • Transform
  • Load
  • Data Governance
  • Data Security
  • Privacy
  • Communication
  • Presentations

Summary

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)
Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 90733111
  • Position Id: 5d798a564657ff7e693535731f6d1118
  • Posted 21 hours ago
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