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GCP Data Engineer (MLOps)TechWishUnited States
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GCP Data Engineer (MLOps)

TechWish
  • US
    United States
  • US
    United States

Über

Job Title:
GCP Data Engineer (MLOps)
Start Date:
Targeting April 1
Location:
Remote (USA). Preferred: Texas or New Jersey
About the role
We are seeking a GCP Data Engineer with strong MLOps experience to build, scale, and operationalize data and ML pipelines on Google Cloud. You will partner with Data Science, Product, and Platform teams to deliver reliable, production-grade workflows for batch and real-time machine learning, while driving model performance monitoring and operational excellence.
Key responsibilities
Design, develop, and optimize scalable data pipelines and ML workflows on GCP with BigQuery and Spark
Build robust ELT/ETL processes and data models supporting ML feature stores, training datasets, and production inference
Orchestrate pipelines and jobs, enabling dependency management, retries, and observability (e.g., Airflow)
Implement CI/CD and automation for data/ML pipelines, including packaging, versioning, and environment promotion
Develop event-driven and micro-batch processes for real-time ML inference (e.g., via Cloud Functions) and low-latency data preparation
Establish model performance monitoring, drift detection, data quality checks, and alerting dashboards
Collaborate closely with Data Scientists to productionize models and establish reproducible training/inference workflows
Enforce best practices for code quality, testing, documentation, and cost/performance optimization on GCP
Troubleshoot production issues, drive root-cause analysis, and implement durable fixes and postmortems
Must-have qualifications
Hands-on experience with Google Cloud (BigQuery) in production environments
Strong Spark expertise (data processing, optimization, and job orchestration)
Advanced proficiency in Python and SQL for data engineering and ML pipeline development
Demonstrated experience building and supporting production-grade data/ML pipelines
Good-to-have (preferred) skills
GCP services: Airflow, gcloud (CLI), Cloud Functions
Solid understanding of core ML concepts (training, evaluation, deployment patterns)
ML model performance monitoring (data/feature drift, model decay, alerting, dashboards)
Explainable AI (xAI) and LLM concepts (prompting, evaluation, guardrails)
Real-time machine learning patterns (feature serving, low-latency inference, event-driven architectures)
Experience with packaging, testing, and CI/CD for ML (artifact/version management, reproducibility)
  • United States

Sprachkenntnisse

  • English
Hinweis für Nutzer

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