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ML Data Infrastructure Engineer

BayOne Solutions

 

Sunnyvale, CA, USA

Posted On: 11 days ago
Experience: 7+ years
Availability: Remote
Openings: 1
Category: Data Infrastructure Engineer
Tenure: No Preference/Any
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Description

You will build and scale data systems for machine learning training and validation.

This role is remote.

Responsibilities

  • Design and implement scalable data processing pipelines for ML workloads.
  • Build and maintain feature stores supporting batch and real-time features.
  • Develop frameworks for data quality monitoring, validation, and testing.
  • Create systems for dataset versioning, lineage tracking, and reproducibility.
  • Partner with data scientists to optimize data preparation workflows.

Required Skills

  • 7+ years of software engineering experience, with 3+ years focused on data infrastructure.
  • Deep expertise in GCP data and ML infrastructure: BigQuery, Dataflow, Cloud Storage, Vertex AI Feature Store, Cloud Composer, and Dataproc.
  • Proficiency in Python and SQL.
  • Expertise in data processing frameworks such as Spark, Beam, or Flink.
  • Experience with feature stores like Feast or Tecton and data versioning tools.
  • Experience with data pipeline orchestration using Airflow or Dagster.
  • Experience with data quality and testing frameworks.

Preferred Skills

  • Experience with streaming systems such as Kafka, Kinesis, or Pub/Sub.
  • Knowledge of GCP security, IAM, Cloud Logging, Cloud Monitoring, Cloud Build, or Cloud Deploy.
  • Familiarity with ML metadata management, data governance, or dbt.

Education

Any Graduate

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