PA

Tech Lead – Databricks / Data Platform

Hiring from
India
Work type
Remote
Posted
Oct 1, 2026
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Job Description

Role: Tech Lead – Databricks / Data Platform
Location:
Remote
Employment Type: Full-Time
Experience: 10–12 Years


JOB SUMMARY

We are looking for an experienced Tech Lead – Databricks / Data Platform to lead the design, development, and optimization of a scalable, secure, and reliable cloud-based data platform. The role will provide technical leadership across Databricks, Azure, CI/CD, Infrastructure as Code, orchestration, data security, FinOps, and platform automation.

The ideal candidate will be hands-on, technically strong, and experienced in leading engineering teams while partnering closely with Data Engineers, Analytics Engineers, Architects, Security, and Cloud teams to deliver enterprise-grade data solutions.

KEY RESPONSIBILITIES

  • Lead the architecture, design, and implementation of Databricks-based data platforms and cloud-native data pipelines.
  • Design and implement robust CI/CD pipelines for data ingestion, transformation, dbt, SQL, notebooks, and Databricks workloads.
  • Lead end-to-end orchestration of Databricks Jobs and Workflows, including ingestion, transformation, data quality checks, and dependencies.
  • Define and implement automated testing and quality gates within CI/CD pipelines, including schema, data model, and contract validation.
  • Drive Infrastructure as Code (IaC) practices using Terraform and reusable modules for Databricks and Azure infrastructure.
  • Automate Databricks platform operations, including workspace and cluster provisioning, runtime and library management, job deployment, configuration, and environment management.
  • Establish and maintain Identity and Access Management (IAM) across Databricks and Azure, including RBAC, TBAC, service principals, groups, roles, and workspace/cluster/table-level access controls.
  • Work closely with the EDP Architect and Security teams to implement secure and scalable Unity Catalog and data governance patterns.
  • Develop reusable Terraform modules, Databricks job templates, Airflow DAG patterns, and engineering frameworks to accelerate onboarding of new projects.
  • Define and govern the code promotion and release management process across development, QA, and production environments.
  • Lead end-to-end orchestration using managed Airflow, ensuring reliable scheduling, dependency management, monitoring, and recovery.
  • Define and track platform SLAs, SLOs, and SLIs, and lead incident triage, root cause analysis, and corrective actions.
  • Implement FinOps best practices for monitoring, optimizing, and allocating Databricks and cloud infrastructure costs.
  • Continuously evaluate and improve platform tooling, architecture, reliability, security, performance, and developer productivity.
  • Provide technical guidance and mentorship to engineers and establish engineering best practices, standards, and reusable patterns.
  • Partner with Data Engineering, Analytics, Architecture, Security, and Infrastructure teams to ensure seamless delivery of enterprise data solutions.
  • Contribute to cloud infrastructure, cybersecurity, disaster recovery, monitoring, logging, and operational readiness.
  • Drive performance optimization and reliability improvements for production data workloads.

REQUIRED QUALIFICATIONS

  • 10–12 years of experience in Data Engineering, Cloud Engineering, DevOps, Platform Engineering, SRE, or related technical disciplines.
  • Strong hands-on experience with Databricks in production environments, including workspace and cluster management, Jobs/Workflows, Unity Catalog, and integration with orchestration platforms.
  • Strong experience with Microsoft Azure and cloud-native data platforms.
  • Strong knowledge of CI/CD and Git-based development workflows, using tools such as Azure DevOps, GitHub Actions, GitLab CI, or similar.
  • Strong experience with Terraform / Infrastructure as Code and cloud infrastructure automation.
  • Hands-on experience with Apache Airflow or managed Airflow for data pipeline orchestration.
  • Strong programming/scripting skills in Python, Bash, or PowerShell.
  • Experience implementing automated testing, validation, and quality gates for data pipelines and data models.
  • Experience with production workload management, including monitoring, logging, troubleshooting, performance tuning, and incident management.
  • Strong understanding of cloud security, IAM, RBAC, data access controls, and governance.
  • Experience with FinOps, cloud cost optimization, and resource utilization monitoring.
  • Ability to provide technical leadership, mentor engineers, and drive engineering standards across teams.
  • Strong communication and stakeholder management skills with the ability to work effectively with technical and business stakeholders.

PREFERRED QUALIFICATIONS

  • Bachelor’s degree in Computer Science, Information Technology, Engineering, or a related field, or equivalent professional experience.
  • Experience with dbt, SQL, Delta Lake, and modern data engineering practices.
  • Experience with Unity Catalog and enterprise data governance.
  • Experience designing reusable platform frameworks and accelerators.
  • Experience in CPG, retail, manufacturing, or distribution environments.
  • Experience with disaster recovery, business continuity, and highly available cloud architectures.
  • Databricks or Azure certifications are a plus.


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