Chief Architect - Data Engineering (Databricks Practice)

Socket.dev

Toronto

On-site

CAD 180,000 - 240,000

Full time

4 days ago
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Job summary

Socket.dev is building a fast-growing Databricks practice and seeks a Lead Solution Architect – Data Engineering to architect and guide enterprise data platforms. You will own end-to-end designs, lead migrations, and drive cloud transformation programs while mentoring engineers and shaping new assets.

You’ll engage with CTOs and BI/ML stakeholders, balancing hands-on delivery with strategic leadership, and contribute to go-to-market offerings and accelerators.

Qualifications

  • 12+ years in data engineering/architecture.
  • 3+ years on Databricks at enterprise scale.
  • Deep Spark expertise including streaming and performance tuning.
  • Lakehouse fluency with Medallion architecture, Delta Lake, Unity Catalog.
  • Experience leading large migrations and cloud transformations.

Responsibilities

  • Own end-to-end architecture and design decisions on Databricks engagements, ensuring secure, scalable, and performant solutions.
  • Lead delivery of production-grade data platforms including ingestion, transformation, orchestration, governance, and BI/ML enablement.
  • Drive large migrations and cloud transformation programs to Databricks on Azure/AWS/GCP, including assessment and cutover.
  • Hands-on mentoring, code/design reviews, and setting engineering standards for the team.
  • Own presales designs and help defend solutions before executives, translating trade-offs for decision-makers.

Skills

Databricks
Data engineering
Spark
Python/SQL/Scala
Unity Catalog
MLflow
LLM APIs
Cloud migrations

Tools

Delta Lake
Airflow
DLT/Lakeflow
Workflows

Job description

We are building a fast-growing Databricks practice delivering enterprise data and AI solutions across APAC. As Lead Solution Architect – Data Engineering, you will be the technical anchor of the practice: leading solution design on client engagements, owning and defending enterprise architectures in presales, and driving large-scale migration and cloud transformation programs. This is a hands-on leadership role for a builder who can equally command a whiteboard in front of a CTO and a Spark UI when a pipeline misbehaves. You will also shape the practice itself — mentoring engineers, creating accelerators and reusable assets, and converting delivery success into case studies and go-to-market offerings.

Architecture & Delivery
  • Own end-to-end architecture and design decisions on Databricks engagements, ensuring solutions are secure, scalable, performant, and aligned with Lakehouse best practices.
  • Lead delivery of production-grade data platforms — ingestion, transformation, orchestration, governance through Unity Catalog, and downstream BI/ML enablement.
  • Lead large-scale migrations (legacy DW/ETL, Hadoop, on-prem estates) and cloud transformation projects to Databricks on Azure/AWS/GCP, including assessment, wave planning, and cutover.
  • Stay hands-on: performance tuning, debugging, code and design reviews, and setting engineering standards for the team.
Presales & Stakeholder Management
  • Own anddefend enterprise solution designs in front of architecture boards, CIOs, and CTOs — and enjoy it.
  • Drive presales end-to-end: discovery, solutioning, estimation, PoCs, RFPs, and proposals that convert.
  • Translate hard technical trade-offs into decisions executives can act on — from engineer to boardroom without changing gears.
Who Thrives Here
  • A builder at heart — 12+ years in data engineering/architecture, 3+ on Databricks at enterprise scale, and still happiest when hands are on the keyboard.
  • Deep Spark expertise — architecture, performance tuning, streaming, debugging, the advanced stuff that separates architects from diagram-drawers.
  • Lakehouse fluency — Medallion architecture, Delta Lake, Unity Catalog, governance, orchestration (Workflows, DLT/Lakeflow, Airflow, ADF); Microsoft Fabric exposure a bonus.
  • Battle-tested in migrations — you've led large transformation programs and have the scars and success stories to show for it.
  • Presales instinct — you don't just design solutions; you sell them, price them, and defend them under fire.
  • Modern edge — strong Python/SQL/Scala, CI/CD for data platforms, and comfort integrating ML/AI (MLflow, LLM APIs like OpenAI and Anthropic) into what you build.
  • Certified credibility — Databricks Data Engineer Professional / SA accreditations strongly preferred.
  • Founder energy — curiosity, adaptability, and the drive to build offerings, not just deliver projects
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