Why This Role Stands Out
This hybrid Databricks Architect role offers a fantastic opportunity to lead cutting-edge data solutions and shape client strategies, ideal for experienced professionals with a proven track record in Databricks implementations. You'll leverage your deep expertise in cloud data platforms and Apache Spark to drive impactful projects within a collaborative environment. Apply now to advance your career with C2S Technologies Inc!
Quick Overview
Seniority
Mid Senior
Work mode
Hybrid
Location
San Francisco, CA, United States
Posted
Yesterday
AWSETLMLOpsMLflowMachine LearningApacheApache SparkAzureDatabricksGitHub ActionsGitLab CIGoogle CloudJenkinsUnity
Job Description
Databricks Architect
2 ROLES - (Resident Solution Architect (Public Sector) / Banking experience )
Core skills needed –
- 12-15+ years of experience in Data Engineering, Data Platforms, Data Analytics, and Modern Data Warehouse solutions, with 10+ years of overall consulting and client-facing delivery experience.
- Demonstrated success delivering 6-8+ end-to-end Databricks implementations, serving as a hands-on developer, technical lead, or solution architect.
- Databricks Data Engineering Professional certification (or equivalent advanced Databricks certification) with completion of all recommended learning paths and coursework.
- Databricks has a Databricks Solutions Architect Champion program- this will be good to have
- Strong expertise in designing and implementing cloud-native data platforms across AWS, Azure, and/or Google Cloud Platform, with deep hands-on proficiency in at least one cloud ecosystem.
- Advanced knowledge of Apache Spark, including performance optimization, partitioning strategies, execution plans, memory management, and Spark runtime internals.
- Extensive hands-on experience developing scalable ETL/ELT pipelines using Databricks, Delta Lake, Structured Streaming, and modern data engineering frameworks.
- Experience implementing DevOps and CI/CD practices for production-grade data solutions using tools such as Azure DevOps, GitHub Actions, GitLab CI/CD, or Jenkins.
- Working knowledge of MLOps principles, machine learning lifecycle management, model deployment, and monitoring within enterprise environments.
- Current and broad understanding of the Databricks Lakehouse Platform, including Delta Lake, Unity Catalog, Workflows, MLflow, Delta Live Tables, and other platform capabilities.
- Strong experience tuning large-scale distributed workloads and designing highly performant, scalable, and cost-efficient data processing solutions.
- Ability to troubleshoot complex data platform challenges and recommend architecture patterns aligned with business and technical requirements
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