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Direct Client Senior Databricks Data Engineer

  • Job type Posted on: Jul 24, 2026
  • Experience level KSN Technologies Inc
  • Employment type Austin, Texas
  • Employment type Onsite
  • Salary Full-time

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Job Title :

Direct Client Senior Databricks Data Engineer

Job Type :

Full-time

Job Location :

Austin Texas United States

Remote :

No

Jobcon Logo Job Description :

Senior Databricks Data Engineer

Austin, TX HYBRID Only Locals

One Year Contract

Looking for the candidates who can work without any visa sponsorship.

INPERSON INTERVIEWS

Position will be 3 days remote with 2 days (Mondays and Thursdays) required to be onsite at the location listed above. Program will only accept LOCAL ONLY candidates for this position. ***Days are subject to change per manager***

8 or more years of experience, relies on experience and judgment to plan and accomplish goals, independently performs a variety of complicated tasks, a wide degree of creativity and latitude is expected.

Understands business objectives and problems, identifies alternative solutions, performs studies and cost/benefit analysis of alternatives. Analyzes user requirements, procedures, and problems to automate processing or to improve existing computer system: Confers with personnel of organizational units involved to analyze current operational procedures, identify problems, and learn specific input and output requirements, such as forms of data input, how data is to be; summarized, and formats for reports. Writes detailed description of user needs, program functions, and steps required to develop or modify computer program. Reviews computer system capabilities, specifications, and scheduling limitations to determine if requested program or program change is possible within existing system.

The Databricks Engineer should design, develop, and optimize scalable data solutions on Databricks, leveraging PySpark or Scala for large-scale data processing. Build and maintain ingestion pipelines, Declarative Pipelines (DLT), and Medallion Architecture (Bronze, Silver, Gold) to support enterprise analytics and reporting. Develop robust data models and implement data quality, validation, and governance frameworks. Create dynamic dashboards, Databricks Apps, and analytical solutions to deliver actionable business insights. Optimize workloads, monitoring, and operational processes to ensure scalability, security, and cost efficiency.

II. CANDIDATE SKILLS AND QUALIFICATIONS

Minimum Requirements:
Candidates that do not meet or exceed the minimum stated requirements (skills/experience) will be displayed to customers but may not be chosen for this opportunity.

Years

Required/Preferred

Experience

8

Required

Experience in IT, supporting the design, development, deployment, or delivery of technology solutions.

8

Required

Experience with Databricks, including building and optimizing ETL/ELT data pipelines using Apache Spark.

8

Required

Experience in data warehousing and dimensional data modeling (star/snowflake schemas).

8

Required

Proficiency in SQL and Python (or Scala) for large-scale data processing.

8

Required

Experience designing and developing dashboards and applications natively within Databricks (e.g., Databricks SQL dashboards, Databricks Apps).

8

Required

Experience implementing data governance, data quality, and data security practices.

8

Required

Experience implementing Lakeflow Declarative Pipelines (formerly Delta Live Tables/DLT) for building and managing production data pipelines.

8

Required

Experience with Delta Lake, medallion architecture (bronze/silver/gold layers), data lakehouse design, and creating and scheduling offline jobs using Lakeflow Jobs (formerly Databricks Workflows) or similar orchestration tools (e.g., Airflow).

8

Required

Excellent communication skills, both verbal and written, including presenting insights to technical and business stakeholders.

1

Preferred

Experience working in public sector or state government environments.

1

Preferred

Databricks certification (e.g., Databricks Certified Data Engineer Associate/Professional).

1

Preferred

Experience with CI/CD practices for data pipelines (DevOps, Git-based workflows).

Jobcon Logo Position Details

Posted:

Jul 24, 2026

Reference Number:

728-42690

Employment:

Full-time

Salary:

Not Available

City:

Austin

Job Origin:

CIEPAL_ORGANIC_FEED

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Senior Databricks Data Engineer

Austin, TX HYBRID Only Locals

One Year Contract

Looking for the candidates who can work without any visa sponsorship.

INPERSON INTERVIEWS

Position will be 3 days remote with 2 days (Mondays and Thursdays) required to be onsite at the location listed above. Program will only accept LOCAL ONLY candidates for this position. ***Days are subject to change per manager***

8 or more years of experience, relies on experience and judgment to plan and accomplish goals, independently performs a variety of complicated tasks, a wide degree of creativity and latitude is expected.

Understands business objectives and problems, identifies alternative solutions, performs studies and cost/benefit analysis of alternatives. Analyzes user requirements, procedures, and problems to automate processing or to improve existing computer system: Confers with personnel of organizational units involved to analyze current operational procedures, identify problems, and learn specific input and output requirements, such as forms of data input, how data is to be; summarized, and formats for reports. Writes detailed description of user needs, program functions, and steps required to develop or modify computer program. Reviews computer system capabilities, specifications, and scheduling limitations to determine if requested program or program change is possible within existing system.

The Databricks Engineer should design, develop, and optimize scalable data solutions on Databricks, leveraging PySpark or Scala for large-scale data processing. Build and maintain ingestion pipelines, Declarative Pipelines (DLT), and Medallion Architecture (Bronze, Silver, Gold) to support enterprise analytics and reporting. Develop robust data models and implement data quality, validation, and governance frameworks. Create dynamic dashboards, Databricks Apps, and analytical solutions to deliver actionable business insights. Optimize workloads, monitoring, and operational processes to ensure scalability, security, and cost efficiency.

II. CANDIDATE SKILLS AND QUALIFICATIONS

Minimum Requirements:
Candidates that do not meet or exceed the minimum stated requirements (skills/experience) will be displayed to customers but may not be chosen for this opportunity.

Years

Required/Preferred

Experience

8

Required

Experience in IT, supporting the design, development, deployment, or delivery of technology solutions.

8

Required

Experience with Databricks, including building and optimizing ETL/ELT data pipelines using Apache Spark.

8

Required

Experience in data warehousing and dimensional data modeling (star/snowflake schemas).

8

Required

Proficiency in SQL and Python (or Scala) for large-scale data processing.

8

Required

Experience designing and developing dashboards and applications natively within Databricks (e.g., Databricks SQL dashboards, Databricks Apps).

8

Required

Experience implementing data governance, data quality, and data security practices.

8

Required

Experience implementing Lakeflow Declarative Pipelines (formerly Delta Live Tables/DLT) for building and managing production data pipelines.

8

Required

Experience with Delta Lake, medallion architecture (bronze/silver/gold layers), data lakehouse design, and creating and scheduling offline jobs using Lakeflow Jobs (formerly Databricks Workflows) or similar orchestration tools (e.g., Airflow).

8

Required

Excellent communication skills, both verbal and written, including presenting insights to technical and business stakeholders.

1

Preferred

Experience working in public sector or state government environments.

1

Preferred

Databricks certification (e.g., Databricks Certified Data Engineer Associate/Professional).

1

Preferred

Experience with CI/CD practices for data pipelines (DevOps, Git-based workflows).

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