Staff Data Engineer, AI Platform

Added
4 days ago
Type
Full time
Salary
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Related skills

s3 dbt airflow spark iceberg

πŸ“‹ Description

  • Design, build, and operate data infrastructure powering large-scale model training and inference.
  • Own pipelines, storage, and data quality for ML workloads upstream of the platform.
  • Ensure data is clean, high-throughput, and well-governed for training and evaluation.
  • Collaborate with ML researchers, platform engineers, and software engineers on data access patterns
  • Partner with ML engineers to define feature stores, dataset versioning, and data contracts

🎯 Requirements

  • 5+ years of professional data engineering experience.
  • BS/MS/PhD in CS, Data Eng, Software Eng, or related field.
  • Hands-on with production pipelines using Spark, Flink, Airflow, dbt or similar batch/streaming
  • Deep proficiency with Parquet and open table formats (Iceberg or Paimon); strong data lakehouse
  • Experience with high-throughput messaging (Kafka, Pulsar) for real-time ingestion; strong SQL
  • Experience with AWS data services (S3, Glue, EMR) and containerized workloads (Docker/Kubernetes)

🎁 Benefits

  • Exposure to CDC replication (Debezium, Airbyte).
  • Experience with data lineage, versioning, and data contracts for reproducible experiments.
  • Opportunity to own early-stage data products in a startup-like AI org within an aerospace company.
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