GCP Data Engineer

Arkhya Tech
Austin, TX, United States
5 days ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
3 years minimum
Working hours
Regular working hours

Tech stack

Airflow Big Data BigQuery Cloud Storage Continuous Integration Information Engineering Extract Transform Load (ETL) Data Security Database Theory Data Flow Control Fraud Prevention and Detection Python (Programming Language)
+18 more
PostgreSQL Machine Learning Meta-Data Management Neo4j Performance Tuning Software Deployment SQL Databases Feature Engineering Integration Tests Deployment Automation Data Management Machine Learning Operations Dataiku Software Coding Restful APIs Data Pipelines Serverless Computing Control M

Requirements

  • Design, develop, and maintain scalable ETL/data pipelines on GCP using Python, Dataflow, BigQuery, Cloud Storage, Composer/Airflow, and Control-M to support fraud analytics, ML, and enterprise data initiatives.
  • Build and optimize ML-ready datasets, feature engineering pipelines, and reusable data assets for model training, validation, and production deployment.
  • Develop high-quality Python solutions following coding standards, security best practices, resiliency, reliability, and performance optimization principles.
  • Strong expertise in SQL, BigQuery/PostgreSQL, data modeling, database concepts, and large-scale data processing.
  • Implement data quality, reconciliation, lineage, metadata management, governance, and monitoring controls to ensure trusted and auditable data pipelines.
  • Design and support CI/CD-enabled data engineering platforms, automated deployments, and integration with enterprise data ecosystems including Dataiku, Neo4j, REST APIs, and cloud-native services.
  • Collaborate with Data Scientists and ML Engineers to support feature availability, data access, pipeline orchestration, integration testing, and ML operationalization.
  • Strong analytical, problem-solving, and troubleshooting skills; exposure to GenAI use cases and MLOps ecosystems is a plus.

Preferred Experience

  • Overall 10+ years of experience
  • 5+ years on GCP Data Engineering
  • 5+ years with Python/Dataflow-based ETL development
  • 3+ years with Composer/Airflow, BigQuery/PostgreSQL, and Google Cloud Storage
  • Experience supporting fraud detection, risk analytics, or ML data platforms preferred.

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Good distractions

Talks and stories from around this role — technically off-topic, practically not.

2:15 min

Empowering domain teams with an open data platform

Sandhya Menon Sandhya Menon · World Congress 2026 Europe

2:24 min

Comparing Neo4j and GraphQL conceptual models

William Lyon · LIVE

3:03 min

Career evolution in data engineering and AI platforms

Maria Apazoglou · Coffee With Developers

2:57 min

Core technical practices for robust data engineering

Sandhya Menon Sandhya Menon · World Congress 2026 Europe

3:30 min

Introduction to Neo4j and remote developer relations work

3:05 min

Audience questions on AI agents and pipeline vectorization

Joy Joy · World Congress 2024

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