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Specialist Solutions Architect - Data Engineering & Warehousing (Financial Services)

Guide enterprise customers through cloud data engineering transformations as a Specialist Solutions Architect at Databricks.

Location
United States
Compensation
$180k–$247.5k/yr
Level
senior
Type
full time · Remote

Posted by employer 2 months ago

First seen on Joblaze 1 month ago

Last verified on the company career page 10 hours ago

Requirements

Experience
5+ years
Education
Bachelor's degree

Not disclosed in this posting: visa sponsorship.

Joblaze summary

In the role of Specialist Solutions Architect for Data Engineering & Warehousing, the individual will guide enterprise clients through complex cloud data transformations, focusing on optimizing big data and data warehousing solutions. Key skills include hands-on experience with data engineering technologies like Spark and Kafka, as well as proficiency in SQL and programming languages such as Python or Scala. This position is ideal for seasoned professionals with a strong technical background, particularly those with experience in pre-sales or technical consulting. The role also emphasizes community engagement through workshops and presentations, reflecting Databricks' commitment to collabora

Joblaze insights

  • Listed about a month ago — first seen on Joblaze August 11, 2026. Last confirmed on Databricks's careers page October 9, 2026.
  • Salary band is in line with the typical range for Data Engineering roles (median ~$180,656).
  • Starts above 36% of 169 comparable senior data engineering roles that list Python we track (median $180,656 across 50 companies). See Python salary trends
  • Python appears in 73.4% of 402 comparable senior data engineering roles; Delta Lake appears in 6.7% of 402 comparable senior data engineering roles.

Quick facts

Is the Specialist Solutions Architect - Data Engineering & Warehousing (Financial Services) role remote?
Yes — Databricks lists this as a fully remote position.
What's the salary range?
Databricks lists $180,000–$247,500 for this role.
How much experience is required?
At least 5 years of relevant experience for this Specialist Solutions Architect - Data Engineering & Warehousing (Financial Services) role.
What's the tech stack?
Joblaze extracted these technologies from the posting: AWS, Azure, Delta Lake, Elastic, GCP, Java.
What seniority level is this role?
Databricks targets senior candidates for this position.
Is this full-time or contract?
Full-time for this Specialist Solutions Architect - Data Engineering & Warehousing (Financial Services) role at Databricks.

From the original posting

FEQ327R691

As a Data Engineering and Warehousing Specialist Solutions Architect (SSA), you will lead the advanced technical strategy for your customers — owning complex architecture discussions, driving platform adoption, and serving as a trusted advisor to customer technical leads and architects. You combine deep technical expertise with strategic thinking to position Databricks as the foundation of your customers’ data and AI strategy. You are further developing a technical specialization and are recognized within the Field Engineering team for depth in the specific domain.

This position can be remote.

The Impact You Will Have

  • Own the end-to-end technical strategy for your accounts, from discovery through production deployment and consumption growth
  • Lead complex architecture discussions — designing scalable, production-grade solutions spanning data engineering and real-time analytics
  • Serve as a trusted technical advisor to customer architects, engineering leads, and Directors
  • Drive technical wins in competitive scenarios by demonstrating Databricks’ differentiation through custom-built solutions
  • Develop and declare an emerging technical specialization (archetype) — becoming a go-to resource for your team in that domain
  • Orchestrate cross-functional resources (DSAs, SAs, Partners) to deliver comprehensive solutions for complex customer needs
  • Influence product direction by providing structured feedback on customer requirements and competitive gaps

What We Look For

  • 6+ years in solutions architecture, technical pre-sales, or a senior hands-on technical role in the following areas:
    • Data and Software Engineering: Deep hands-on experience with Apache Spark™ ecosystem (Spark Core, Spark SQL, Spark Streaming), message queues (e.g., Kafka), batch ingestion, performance tuning, and troubleshooting complex Spark workloads
    • Data Applications Engineering: Experience building or supporting data-driven use cases, predictive analytics pipelines, or customer analytics platforms
    • Data Warehousing & Migration: Experience migrating EDW workloads (e.g., legacy SQL, Redshift, Snowflake, Synapse, EMR) across OLAP/OLTP systems; advanced query tuning, governance, and MPP debugging
    • [Nice to have] Data Observability & Security: Telemetry, high-velocity log ingestion, anomaly detection, and familiarity with SIEM tools (e.g., Splunk, Elastic, Sentinel)
  • Strong coding proficiency in Python and SQL — you must demonstrate live coding, debugging, and solution-building skills
  • Deep expertise in distributed data systems architecture: designing scalable pipelines, streaming architectures, lakehouse patterns, and cloud-native data platforms
  • Proficient on the Databricks Platform (or demonstrated ability to achieve proficiency rapidly) with a developing technical specialization in one area (e.g., real-time/streaming, ML/AI, data governance, migrations)
  • Proven ability to lead architecture discussions with senior technical stakeholders — whiteboarding, design reviews, and trade-off analysis
  • Experience with production deployments on public cloud (AWS, Azure, or GCP), including infrastructure, security, and governance considerations
  • Track record of driving platform adoption and consumption growth within accounts
  • Excellent communication skills — able to translate complex architectures into business value for both technical and executive audiences
  • Bachelor's or Master's degree in Computer Science, Engineering, or a quantitative discipline (or equivalent experience)
  • Willingness to travel up to 30% as needed

Nice to Have

  • Databricks certifications (Data Engineer, ML, Platform)
  • Experience with competitive platforms (Snowflake, AWS native services, Azure Synapse) — understanding the landscape you'll position against
  • Background in a data/AI company or cloud provider
  • Industry domain expertise (Financial Services, Healthcare, Retail, Media, etc.)

Pay Range Transparency

Databricks is committed to fair and equitable compensation practices. The pay range(s) for this role is listed below and represents the expected salary range for non-commissionable roles or on-target earnings for commissionable roles. Actual compensation packages are based on several factors that are unique to each candidate, including but not limited to job-related skills, depth of experience, relevant certifications and training, and specific work location. Based on the factors above, Databricks anticipates utilizing the full width of the range. The total compensation package for this position may also include eligibility for annual performance bonus, equity, and the benefits listed above. For more information regarding which range your location is in visit our page here.

Local Pay Range
$180,000—$247,500 USD

About Databricks

Benefits

Standard company text repeated across Databricks's postings is omitted here.

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