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Data Engineer - Microsoft Fabric / Azure

Innosystech Inc

Job Title: Senior Data Engineer Microsoft Fabric / Azure

Client: Autodesk

Work Model: Fully Remote

Must Haves

  • 7+ years of experience in data engineering and enterprise data integration.
  • Strong hands-on experience with Microsoft Fabric and related Azure data services.
  • Strong experience with PySpark, SparkSQL, Python, and SQL/T-SQL.
  • Experience building ingestion and transformation pipelines from APIs, files, databases, and third-party platforms.
  • Experience with curated data layers, data modeling, and analytics-ready datasets.
  • Experience tuning data pipelines for scale, resiliency, and cost optimization.
  • Working knowledge of security, access controls, and data governance practices.
  • Experience with Azure DevOps and Git-based deployment automation.

Description / Responsibilities / Skills

Role Overview

  • Requiring a senior engineer who can work independently while collaborating with data architects, analysts, application teams, and business stakeholders.

Experience & Skill Set Requirements

Preferred / Nice-to-Have Skills

  • Experience with Microsoft Fabric Lakehouse and Warehouse architectures.
  • Experience with OneLake.
  • Experience with Fabric Data Factory / Data Pipelines.
  • Experience with Azure Data Factory.
  • Experience with Azure Data Lake Storage (ADLS Gen2).
  • Experience with Delta Lake / Delta tables.
  • Knowledge of medallion architecture Bronze, Silver, and Gold data layers.
  • Experience supporting enterprise analytics or reporting platforms such as Power BI.
  • Experience designing reusable ingestion frameworks and metadata-driven pipelines.
  • Understanding of data observability, lineage, metadata management, and governance frameworks.
  • Experience working within large enterprise or SaaS/product technology environments.

Required Skills & Qualifications Additional Criteria

  • Strong understanding of ETL/ELT architecture and data integration patterns.
  • Experience implementing data-quality checks, error handling, monitoring, and recovery mechanisms.
  • Strong troubleshooting and analytical skills.
  • Ability to work effectively in a distributed, fully remote engineering environment.

Key Responsibilities

  • Design, develop, and maintain scalable enterprise data pipelines using Microsoft Fabric and Azure data services.
  • Build ingestion frameworks for structured and semi-structured data from REST APIs, flat files, relational databases, cloud platforms, third-party applications and enterprise systems.
  • Develop complex data transformation and processing workflows using PySpark, SparkSQL, Python, SQL, and T-SQL.
  • Build and maintain raw, curated, and analytics-ready data layers supporting reporting, analytics, and downstream applications.
  • Design efficient data models and datasets optimized for analytical consumption.
  • Implement data quality, validation, reconciliation, and monitoring mechanisms across ingestion and transformation pipelines.
  • Troubleshoot pipeline failures, performance bottlenecks, data-quality issues, and integration problems.
  • Collaborate with architects and business teams to translate data requirements into scalable technical solutions.
  • Support production deployments, monitoring, troubleshooting, and continuous improvement of the data platform.
  • Document data flows, transformation logic, technical designs, dependencies, and operational procedures.
Vacancy posted more than 2 months ago

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