Data Engineer - W2 Only

Downey, CA, US • Posted 4 hours ago • Updated 4 hours ago
Contract W2
On-site
$60 - $80/hr
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Big Data
  • Azure
  • Cloud
  • Azure Data Factory
  • Data Lake
  • Databricks
  • Spark
  • PySpark
  • Scala
  • SQL

Summary

Title: Data Engineer

Location: Downey, CA - Onsite

Duration: 12 Months

Skills Required:
Cloud Platforms: Deep understanding of Azure ecosystem, including Azure Data Factory, Data Lake Storage, Blob Storage, power apps, and Functions.
Additionally, in-depth understanding and implementation of API management such as Apigee. Big Data Technologies: Proficiency in Databricks, Spark, PySpark, Scala, and SQL.
Data Engineering Fundamentals: Expertise in ETL/ELT processes, data pipelines, data modeling, schema design, and data warehousing.
Programming Languages: Strong Python and SQL skills, with knowledge of other languages like Scala or R beneficial.
Data Warehousing and Business Intelligence: Strong ERD concepts, designs, and patterns, Understanding of OLAP/OLTP systems, performance tuning, Database Server concepts, and BI tools (Power BI, Tableau).
Data Governance: Strong understanding of RBAC/ABAC, Data Lineage, Data leak prevention, Data security, and compliance.
Deep understanding and implementation knowledge of audit and monitoring in Cloud.
Infrastructure Deployment: GitHub version control, CI/CD pipelines, release management, Terraform and YAML templates, and script-based deployments.

Experience Required:

Seven (7) years of applying Enterprise Architecture principles, with at least five (5) years in a lead capacity.
Five (5) years of hands-on experience with Azure Data Factory, Azure Databricks, API implementation and management solution, and managing Azure resources.
Five (5) years of experience in the following: developing data models and pipelines using Python; working with Lakehouse platforms; GitHub CI/CD pipelines and infrastructure automation, Terraform scripting; and with data warehousing systems, OLAP/OLTP systems, integration of BI tools and designing, developing, and deploying AI/ML and predictive analytics solutions using Databricks, Apache Spark, MLflow, Delta Lake, Python, and cloud platforms such as AWS or Azure.
Proven ability to build and operationalize predictive models, Generative AI solutions, and enterprise-scale analytics pipelines to support forecasting, operational intelligence, and data-driven decision-making.

Education Required:

This classification requires the possession of a bachelor s degree in computer science or IT-related field.

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 90941473
  • Position Id: 8969449
  • Posted 4 hours ago
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