GCP Data Engineer

IVID TEK INC

Phoenix (AZ)

On-site

USD 120,000 - 160,000

Full time

14 days+
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Job summary

IVID TEK INC in Phoenix, AZ is seeking an experienced GCP Data Engineer to design, build, and optimize enterprise-grade data platforms on Google Cloud. You will create robust batch and real-time pipelines, manage data warehouses, and enable analytics across large-scale environments.

The role emphasizes hands-on Python, PySpark, BigQuery, Dataflow, Airflow, and CI/CD practices, with collaboration across BI and ML teams to drive data-driven decisions.

Qualifications

  • 6-9 years of experience in data engineering on GCP.
  • Proficient in Python, SQL, and PySpark.
  • Experience with BigQuery, Dataflow, Cloud Composer, Pub/Sub, and GCS.
  • Strong CI/CD practices using Git and Jenkins.
  • Experience supporting BI dashboards (Tableau/Looker).
  • Familiarity with AI/ML data prep and modelling concepts.

Responsibilities

  • Cloud Pipeline Architecture: Design, develop, and maintain automated batch and streaming data pipelines using GCP services including BigQuery, Dataflow (Apache Beam), Cloud Composer (Apache Airflow), Pub/Sub, and Cloud Storage (GCS).
  • Data Warehousing & Optimization: Build and optimize large-scale data models in BigQuery utilizing partitioning, clustering, and materialized views to maximize query performance and control compute costs.
  • Programming & Automation: Write production-grade Python and PySpark scripts for complex ETL/ELT transformations, data manipulation, and pipeline orchestration.
  • CI/CD & DevOps Integration: Implement and support Git-based version control, continuous integration, and continuous delivery (CI/CD) pipelines using tools like Jenkins for code deployment, testing, and automated monitoring.
  • BI & Reporting Support: Collaborate with business intelligence and analytics teams by preparing clean, structured datasets and assisting with data integration for reporting tools such as Tableau or Looker.
  • AI/ML Alignment: Partner with cross-functional teams to support and integrate data models designed for downstream AI/ML solutions and predictive analytics.

Skills

Python
SQL
PySpark
BigQuery
Dataflow
Airflow
Looker
Tableau
CI/CD
Git

Tools

Git
Jenkins
Airflow

Job description

GCP Data Engineer

Experience: 6 to 9 Years

Location: Phoenix, AZ, USA (Onsite)

Job Description

We are seeking an experienced GCP Data Engineer to design, build, and optimize enterprise-grade data platforms on Google Cloud. In this role, you will be responsible for building robust batch and real-time data pipelines, managing cloud data warehouses, and enabling analytics and reporting across large-scale data environments.

Key Responsibilities
  • Cloud Pipeline Architecture: Design, develop, and maintain automated batch and streaming data pipelines using GCP services including BigQuery, Cloud Dataflow (Apache Beam), Cloud Composer (Apache Airflow), Pub/Sub, and Cloud Storage (GCS).
  • Data Warehousing & Optimization: Build and optimize large-scale data models in BigQuery utilizing partitioning, clustering, and materialized views to maximize query performance and control compute costs.
  • Programming & Automation: Write production-grade Python and PySpark scripts for complex ETL/ELT transformations, data manipulation, and pipeline orchestration.
  • CI/CD & DevOps Integration: Implement and support Git-based version control, continuous integration, and continuous delivery (CI/CD) pipelines using tools like Jenkins for code deployment, testing, and automated monitoring.
  • BI & Reporting Support: Collaborate with business intelligence and analytics teams by preparing clean, structured datasets and assisting with data integration for reporting tools such as Tableau or Looker.
  • AI/ML Alignment: Partner with cross-functional teams to support and integrate data models designed for downstream AI/ML solutions and predictive analytics.
Required Qualifications
  • Core Cloud Stack: 6 to 9 years of hands-on experience in data engineering, with strong expertise in core GCP services: BigQuery, Dataflow, Cloud Composer, Pub/Sub, and GCS.
  • Languages & Frameworks: Expert-level proficiency in Python, SQL, and PySpark / Apache Beam.
  • DevOps Best Practices: Experience with Git, Jenkins automation, code integration, and peer code reviews within an Agile environment.
  • Visualization & BI: Experience supporting data integration, data modeling, and performance tuning for downstream dashboards (e.g., Tableau).
  • AI/ML Awareness: Basic understanding of AI/ML concepts and practical exposure to integrating data for AI/ML models or solutions is preferred.
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