Databricks Architect

PamTen Inc

  • Washington, DC
  • 8 days ago

    Highlights

    Architect end-to-end data pipelines for batch and real-time processing using Apache Spark and PySpark. 12 YRS Exp Design and implement enterprise-scale solutions on the Databricks Lakehouse Platform.

    Numbers & Facts

    LocationWashington, DC

    Description

    Responsibilities & Skills:
    12 YRS Exp
    • Design and implement enterprise-scale solutions on the Databricks Lakehouse Platform.
    • Architect end-to-end data pipelines for batch and real-time processing using Apache Spark and PySpark.
    • Develop scalable data ingestion, transformation, and data quality frameworks.
    • Design and implement Medallion Architecture (Bronze, Silver, Gold) using Delta Lake.
    • Build and optimize data warehouses, data marts, and analytical solutions.
    • Implement data governance, security, lineage, and access controls using Unity Catalog.
    • Develop and support AI/BI dashboards, semantic models, and self-service analytics solutions.
    • Configure and optimize Genie Spaces to enable natural language business queries and conversational analytics.
    • Design and deploy Generative AI and RAG-based solutions using Databricks Mosaic AI and Vector Search.
    • Collaborate with business users to translate requirements into scalable data and AI solutions.
    • Optimize Databricks workloads for performance, scalability, reliability, and cost efficiency.
    • Lead cloud-native implementations across Azure environments.
    • Define architecture standards, best practices, and reusable design patterns.
    • Mentor data engineers, analysts, and architects on Databricks technologies and platform adoption.
    • Lead migration initiatives from legacy data warehouses and analytics platforms to Databricks.
    • Build and maintain Genie Spaces for business self-service analytics.
    • Create semantic models, metrics, and trusted data assets for AI-driven reporting.
    • Develop natural language-to-SQL analytics solutions using Databricks Genie.
    • Implement RAG solutions using enterprise data and Vector Search.
    • Optimize AI/BI dashboards and conversational analytics experiences.
    • Troubleshoot Spark performance, query optimization, and workload management.
    • Automate data validation, monitoring, and governance controls.
    • Support AI use cases using Mosaic AI model serving and inference endpoints.

    Technical Skills
    • Databricks Lakehouse Platform
    • Apache Spark, PySpark, Spark SQL
    • Python, SQL
    • Delta Lake, Delta Live Tables, Lakeflow
    • Unity Catalog
    • Databricks AI/BI and Genie
    • Mosaic AI, Vector Search, RAG
    • Data Modeling (Dimensional & Data Vault)
    • Structured Streaming
    • Data Quality and Data Governance
    • Azure
    • Terraform, Git, Azure DevOps, Jenkins
    • REST APIs and Data Integration
    • Performance Tuning and Cost Optimization

    Certification : Azure Databricks certified Data Eng professional

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