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Databricks Developer

Job in San Jose, Santa Clara County, California, 95199, USA
Listing for: Tredence Inc.
Full Time position
Listed on 2026-09-13
Job specializations:
  • IT/Tech
    Data Engineering, Data Warehousing, Data Science Manager
Salary/Wage Range or Industry Benchmark: 140000 - 190000 USD Yearly USD 140000.00 190000.00 YEAR
Job Description & How to Apply Below

We are looking for a highly skilled Databricks Developer with expertise in building and managing modern data platforms using the Databricks Lakehouse architecture. The ideal candidate will have strong experience in PySpark, Python, SQL, Delta Lake, data modeling, data quality frameworks, and enterprise-scale data engineering solutions. The role involves designing, developing, and optimizing scalable data pipelines that support analytics, reporting, and AI/ML initiatives.

Role

description

Job Summary

Location
-US/Canada

We are looking for a highly skilled Databricks Developer with expertise in building and managing modern data platforms using the Databricks Lakehouse architecture. The ideal candidate will have strong experience in PySpark, Python, SQL, Delta Lake, data modeling, data quality frameworks, and enterprise-scale data engineering solutions. The role involves designing, developing, and optimizing scalable data pipelines that support analytics, reporting, and AI/ML initiatives.

Key Responsibilities
  • Design and implement scalable data solutions using Databricks Lakehouse Architecture.
  • Develop and maintain data pipelines using PySpark, Python, and SQL.
  • Build and optimize ETL/ELT workflows for batch and near real-time data processing.
  • Implement Delta Lake features including ACID transactions, time travel, schema evolution, and data versioning.
  • Design and maintain enterprise data models to support reporting and analytics requirements.
  • Ensure data quality through validation, monitoring, reconciliation, and governance controls.
  • Develop and manage data catalogs, metadata management, and data lineage processes.
  • Collaborate with business stakeholders, architects, and analytics teams to gather and translate requirements into technical solutions.
  • Optimize Databricks workloads for performance, scalability, and cost efficiency.
  • Implement security, access controls, and governance best practices within the Databricks ecosystem.
  • Support troubleshooting, root cause analysis, and production issue resolution.
  • Contribute to data platform modernization and cloud migration initiatives.
Required Technical Skills Databricks
  • Strong experience with Databricks Architecture and platform administration.
  • Hands-on expertise in Databricks Lakehouse Architecture.
  • Deep understanding of Delta Lake concepts and implementation.
  • Experience with Unity Catalog / Data Catalog and metadata management.
  • Knowledge of Databricks Workflows, Jobs, Clusters, and Performance Tuning.
Data Engineering
  • Strong proficiency in PySpark for large-scale data processing.
  • Advanced Python programming skills.
  • Expert-level SQL development and query optimization.
  • Experience in building robust ETL/ELT pipelines.
  • Strong understanding of data modeling techniques including:
    • Star Schema
    • Snowflake Schema
    • Dimensional Modeling
    • Data Vault (preferred)
Data Governance & Quality
  • Experience implementing data quality frameworks and validation checks.
  • Knowledge of data lineage, metadata management, and governance processes.
  • Experience with data reconciliation, profiling, and monitoring tools.
Cloud & Platform Experience (Preferred)
  • Azure Databricks
  • Azure Data Lake Storage (ADLS)
  • Azure Data Factory
  • Azure Synapse Analytics
  • CI/CD pipelines (Azure Dev Ops, Git Hub Actions)
Qualifications
  • Bachelor's or Master's degree in Computer Science, Information Technology, Data Engineering, or a related field.
  • 4-8 years of experience in Data Engineering and Analytics.
  • Minimum 3+ years of hands-on experience with Databricks and PySpark.
  • Experience working in Agile development environments.
Preferred Certifications
  • Databricks Certified Data Engineer Associate/Professional
  • Microsoft Azure Data Engineer Associate (DP-203)
  • Databricks Lakehouse Fundamentals
Key Deliverables
  • Scalable and optimized data pipelines.
  • Enterprise-grade Lakehouse solutions.
  • High-quality curated datasets for analytics and reporting.
  • Automated data quality and monitoring frameworks.
  • Well-documented data models and metadata repositories.
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