Databricks Engineer Id86297

INGEPSY

Perímetro Urbano Barranquilla

Híbrido

COP 280.260.000 - 404.820.000

Jornada completa

Hace 2 días
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Ventajas ofrecidas por este puesto de trabajo

Professional growth
Competitive USD-based compensation
A selection of exciting projects
Flextime

Descripción de la vacante

AgileEngine is seeking a Data Engineer to build batch and streaming pipelines on Databricks using PySpark and Delta Lake. You will migrate legacy data warehouse and ETL workloads onto a governed Lakehouse, modeling a medallion architecture that powers analytics and AI use cases.

Strong SQL, Python, and experience with Unity Catalog governance round out the role. The role involves designing and operating pipelines, optimizing Spark and Delta tables for performance, and collaborating with DevOps

Formación

  • 4+ years of professional experience in data engineering with Spark and cloud-based data architectures.
  • Strong SQL and Python with data modeling skills across dimensional and Lakehouse patterns.
  • Experience with streaming ingestion using Structured Streaming, Auto Loader, Kafka, or Event Hubs.
  • Experience with workflow orchestration (Databricks Workflows, Airflow, or Azure Data Factory).
  • Experience with legacy platform migrations, ETL modernization, or managing data hygiene when porting old systems.
  • Familiarity with Unity Catalog, data governance, access control, and PII handling.
  • Experience delivering production data platforms at scale.

Responsabilidades

  • Design, build, and operate batch and streaming data pipelines on Databricks using PySpark, Delta Lake, and Databricks Workflows.
  • Model and maintain a medallion (bronze/silver/gold) architecture serving analytics, reporting, and machine learning consumers.
  • Migrate legacy ETL and data warehouse workloads onto the Lakehouse with validated data parity and minimal business disruption.
  • Write clean, well-tested Python and SQL; maintain high standards through code review and documentation.
  • Optimize Spark jobs and Delta tables for performance and cost, including partitioning, clustering, caching, and cluster sizing.
  • Implement data quality, lineage, and governance controls using Unity Catalog and automated validation checks.
  • Debug, troubleshoot, and resolve pipeline failures, data defects, and production incidents.
  • Collaborate with DevOps, platform, and analytics engineers on observability, security, and compliance best practices.

Conocimientos

Apache Spark
Python
SQL
Data modeling
Distributed systems
Mentoring

Herramientas

Databricks
Delta Lake
PySpark
Unity Catalog
Airflow
Azure Data Factory
dbt

Descripción del empleo

AgileEngine is an Inc. 5000 company that creates award-winning software for Fortune 500 brands and trailblazing startups across 17+ industries. We rank among the leaders in areas like application development and AI/ML, and our people-first culture has earned us multiple Best Place to Work awards.

WHY JOIN US

If you're looking for a place to grow, make an impact, and work with people who care, we'd love to meet you!

ABOUT THE ROLE

We are looking for a Data Engineer to build batch and streaming pipelines on Databricks using PySpark and Delta Lake. This person migrates legacy data warehouse and ETL workloads onto a governed Lakehouse, modeling a medallion architecture that powers analytics and AI use cases. Strong SQL, Python, and experience with Unity Catalog governance round out the role.

WHAT YOU WILL DO
  • - Design, build, and operate batch and streaming data pipelines on Databricks using PySpark, Delta Lake, and Databricks Workflows.
  • - Model and maintain a medallion (bronze/silver/gold) architecture serving analytics, reporting, and machine learning consumers.
  • - Migrate legacy ETL and data warehouse workloads onto the Lakehouse with validated data parity and minimal business disruption.
  • - Use Claude or GitHub Copilot as a development accelerator, generating code scaffolding, writing and reviewing tests, creating documentation, and prototyping solutions.
  • - Write clean, well-tested Python and SQL; maintain high standards through code review and documentation.
  • - Optimize Spark jobs and Delta tables for performance and cost, including partitioning, clustering, caching, and cluster sizing.
  • - Implement data quality, lineage, and governance controls using Unity Catalog and automated validation checks.
  • - Debug, troubleshoot, and resolve pipeline failures, data defects, and production incidents.
  • - Participate in Agile or product-centric delivery practices, including sprint planning and retrospectives.
  • - Collaborate with DevOps, platform, and analytics engineers on observability, security, and compliance best practices.
MUST HAVES
  • - 4+ years of professional experience in data engineering, featuring direct expertise with Apache Spark and cloud-based data architectures.
  • - Strong hands-on experience building data pipelines with Databricks, Apache Spark (PySpark), and Delta Lake.
  • - Advanced SQL and Python, with strong data modeling skills across dimensional and Lakehouse patterns.
  • - Experience with streaming ingestion using Structured Streaming, Auto Loader, Kafka, or Event Hubs.
  • - Experience with workflow orchestration (Databricks Workflows, Airflow, or Azure Data Factory).
  • - Experience with legacy platform migrations, ETL modernization, or managing data hygiene when porting old systems.
  • - Strong problem-solving, collaboration, and communication skills, including mentoring junior engineers and explaining data concepts to non-technical stakeholders.
  • - Familiarity with Unity Catalog, data governance, access control, and PII handling.
  • - Experience with dbt or an equivalent transformation framework.
  • - Familiarity with secure coding standards and industry security best practices.
NICE TO HAVES
  • - Experience with Infrastructure as Code (IaC) using Terraform and CI/CD using Azure DevOps.
  • - Experience working with relational databases (specifically PostgreSQL) and data persistence concepts.
  • - Familiarity with logging and monitoring tools (e.g., Dynatrace, CloudWatch, Databricks system tables).
  • - Experience working in Agile or team-based development environments preferred.
PERKS AND BENEFITS
  • - Professional growth: Accelerate your professional journey with mentorship, TechTalks, and personalized growth roadmaps.
  • - Competitive compensation: We match your ever-growing skills, talent, and contributions with competitive USD-based compensation and budgets for education, fitness, and team activities.
  • - A selection of exciting projects: Join projects with modern solutions development and top-tier clients that include Fortune 500 enterprises and leading product brands.
  • - Flextime: Tailor your schedule for an optimal work-life balance, by having the options of working from home and going to the office – whatever makes you the happiest and most productive.
Requirements
  • -+4 years of professional experience in data engineering, featuring direct expertise with Apache Spark and cloud-based data architectures.
  • -Strong hands-on experience building data pipelines with Databricks, Apache Spark (PySpark), and Delta Lake.
  • -Advanced SQL and Python, with strong data modeling skills across dimensional and Lakehouse patterns.
  • -Experience with streaming ingestion using Structured Streaming, Auto Loader, Kafka, or Event Hubs.
  • -Experience with workflow orchestration (Databricks Workflows, Airflow, or Azure Data Factory).
  • -Experience with legacy platform migrations, ETL modernization, or managing data hygiene when porting old systems.
  • -Strong problem-solving, collaboration, and communication skills, including mentoring junior engineers and explaining data concepts to non-technical stakeholders.
  • -Familiarity with Unity Catalog, data governance, access control, and PII handling.
  • -Experience with dbt or an equivalent transformation framework.
  • -Familiarity with secure coding standards and industry security best practices.
  • -Experience delivering production data platforms at scale.
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