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Senior Designated Support Engineer

Join Databricks as a Senior Designated Support Engineer to provide specialized support for strategic customers in the Digital Native Business segment.

Location
Sydney, Australia
Compensation
Not disclosed
Level
senior
Type
full time

Posted by employer 1 month ago

First seen on Joblaze 1 month ago

Last verified on the company career page 23 hours ago

Requirements

Experience
5–8 years

Not disclosed in this posting: compensation, work arrangement, visa sponsorship.

Joblaze summary

In the role of Senior Designated Support Engineer at Databricks, the individual will engage directly with major clients to provide specialized technical support and solutions, focusing on complex issues related to Apache Spark and other data technologies. Key skills include advanced troubleshooting, data engineering, and proficiency in cloud platforms, with a strong emphasis on customer-facing experience. This position is ideal for seasoned professionals with a background in distributed computing and a knack for proactive problem-solving. The role also involves collaboration with cross-functional teams to enhance customer experiences and drive technical improvements.

Joblaze insights

  • Listed about a month ago — first seen on Joblaze August 23, 2026. Last confirmed on Databricks's careers page October 7, 2026.
  • This exact title is also open at 1 other location at Databricks: Japan.
  • Python appears in 80.4% of 219 comparable senior data engineering roles in United States; Delta appears in 0.5% of 219 comparable senior data engineering roles in United States.

Quick facts

How much experience is required?
5–8 years of relevant experience for this Senior Designated Support Engineer role.
What's the tech stack?
Joblaze extracted these technologies from the posting: AWS, Apache Spark, Azure, BigQuery, Delta, GCP.
What seniority level is this role?
Databricks targets senior candidates for this position.
Is this full-time or contract?
Full-time for this Senior Designated Support Engineer role at Databricks.

From the original posting

CSQ227R215

As a Senior Designated Engineer and tech subject matter expert, you will partner closely with our Field and Engineering teams to deliver high-touch specialized support and tailored technical solutions for Databricks' largest and most strategic customers in the Digital Native Business (DNB) segment. In this customer-facing role, you will leverage your technical expertise in Apache Spark™ and other data technologies to triage and resolve complex product issues and unblock our customers’ most critical technical challenges.

The Impact You Will Have:

  • Perform advanced Troubleshooting and Root Cause Analysis to resolve performance and reliability issues in Spark, SQL, Delta, Streaming, and Databricks runtime features using tools like Spark UI metrics, Mosaic AI Model Service, DAGs, and event logs.
  • Discover requirements for continuous monitoring to detect early performance issues, working with R&D and NOC teams to optimise the DNB customer environments.
  • Build Rapid POCs, Test/Deploy/Monitor the solutions built by Databricks Engineering to address customer challenges and showcase advanced Spark/ML/AI runtime capabilities aligned with their business goals.
  • Develop comprehensive playbooks and maintain a knowledge base of common issues and solutions for Spark, ML, and AI workflows.
  • Train customer engineering and business teams on best practices in performance tuning, debugging, and effectively leveraging Databricks Features.
  • Pilot new best practices processes/ programs, champion process improvements, and collaborate with cross-functional teams to enhance the customer experience.
  • Advocate for customers in business review meetings and maintain close relationships as a trusted advisor and primary technical point of contact.
  • Collaborate onsite with Field Engineering, Sales, and Product teams during customer engagements and technical presentations to provide rapid solutions to production-impacting issues, demonstrating deep technical expertise and building strong customer trust.

What We Look For:

  • Technical Expertise in Big Data and Spark: 5 to 8 years of experience designing, building, and troubleshooting distributed computing applications, with 4+ years delivering production-scale Spark/ML/AI solutions using Python, Java, or Scala.
  • Data Engineering Specialisation: Hands-on expertise with Data Lakes, SQL-based databases, and Cloud-based Data Warehousing/ETL tools like Snowflake, Redshift, Bigquery, etc
  • Advanced Tech Skills: Deep knowledge of Spark core internals, Delta/Iceberg, JVM optimisation, and memory management, with additional proficiency in AI ecosystems like Machine Learning, Deep Learning, and Generative AI.
  • Cloud and CI/CD Skills: Practical experience with AWS, Azure, or GCP, coupled with expertise in building and managing CI/CD pipelines, monitoring, and alerting systems.
  • Customer-Facing Experience: 3–5 years in customer-facing roles such as Technical Account Manager or Solutions Architect, demonstrating strong communication, relationship-building, and problem-solving skills.
  • Advanced Proactive Problem Solving Skills: Proven ability to anticipate, identify, and mitigate risks while planning solutions for production challenges. Effectively use sound business judgment, risk avoidance and subject matter expert resources to coordinate team efforts to solve problems.
  • Collaboration and Leadership: Proven ability to work with cross-functional teams and senior leadership to address roadblocks, mitigate risks, and drive customer success while creating impactful documentation for self-service solutions.

About Databricks

Benefits

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