AI engineer-Data Databricks Pltform

Ecolab

Bengaluru

On-site

INR 1,800,000 - 2,400,000

Full time

8 days ago
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Job summary

Ecolab is seeking a Databricks Platform Engineer to design, build, configure, and operationalize enterprise Data & AI solutions on the Databricks platform. You will enable data engineers, data scientists, AI engineers, and business teams with scalable, secure, and reliable capabilities across development, testing, and production environments.

The role emphasizes integration with Delta Lake, Unity Catalog, MLflow, and CI/CD pipelines, along with strong automation and platform governance to

Qualifications

  • Bachelor's or master's degree in computer science, engineering, IT, or related field.
  • 5+ years of experience in Data, Platform, or Cloud Engineering.
  • 3+ years hands-on Databricks Lakehouse Platform experience.
  • Strong expertise in Delta Lake, Unity Catalog, MLflow, Databricks Workflows, PySpark, Spark SQL.
  • Experience with cloud platforms such as Azure, AWS, or GCP.
  • Proficiency in Python and SQL.
  • Strong knowledge of DevOps, CI/CD, IaC, and platform automation.

Responsibilities

  • Design, build, configure, and maintain Databricks workspaces across environments.
  • Implement platform standards, reusable frameworks, templates, and best practices.
  • Manage Unity Catalog, clusters, SQL Warehouses, compute policies, and access controls.
  • Automate platform deployment using Terraform and CI/CD pipelines.
  • Build and integrate scalable data pipelines using lakehouse architecture.
  • Design ingestion frameworks for batch, streaming, API, and file-based integrations.

Skills

Databricks Lakehouse
PySpark
Spark SQL
Delta Lake
Unity Catalog
MLflow
Python
SQL
DevOps
IaC

Education

Bachelor's or Master’s in CS/Engineering

Tools

Terraform
GitHub Actions
Azure DevOps

Job description

Job Description: Databricks Platform Engineer
Position Summary

We are seeking a highly skilled Databricks Platform Engineer to design, build, configure, integrate, and operationalize enterprise Data & AI solutions on the Databricks platform. This role will be responsible for establishing scalable, secure, and reliable data and AI capabilities, enabling data engineers, data scientists, AI engineers, and business teams to accelerate innovation and deliver business value.

The ideal candidate will possess deep expertise in Databricks, cloud platforms, data engineering, MLOps, platform automation, and enterprise integration patterns.

Key Responsibilities
Platform Engineering & Administration
  • Design, build, configure, and maintain Databricks workspaces across development, testing, and production environments.
  • Implement platform standards, reusable frameworks, templates, and best practices.
  • Manage Unity Catalog, clusters, SQL Warehouses, compute policies, workspace configurations, and access controls.
  • Automate platform deployment and configuration using Infrastructure as Code (Terraform, CI/CD pipelines).
Data Engineering & Integration
  • Build and integrate scalable data pipelines using Databricks Lakehouse architecture.
  • Design ingestion frameworks for batch, streaming, API, database, and file-based integrations.
  • Implement Delta Lake, Structured Streaming, and medallion architecture patterns.
  • Integrate Databricks with enterprise data platforms such as Snowflake, SAP, Oracle, SQL Server, Azure Data Factory, Kafka, and cloud storage services.
AI & Machine Learning Enablement
  • Enable ML and Generative AI workloads on Databricks.
  • Implement MLflow, model lifecycle management, feature stores, and model serving capabilities.
  • Support AI engineers and data scientists with scalable development environments.
  • Integrate Databricks with LLMs, vector databases, AI gateways, and enterprise AI platforms.
DevOps, DataOps & MLOps
  • Establish CI/CD pipelines for data and AI workloads.
  • Implement automated testing, deployment, monitoring, and rollback mechanisms.
  • Create reusable deployment frameworks and engineering accelerators.
  • Support release management and environment promotion processes.
Security, Governance & Compliance
  • Implement enterprise security controls, RBAC, data masking, encryption, and audit logging.
  • Configure and manage Unity Catalog governance policies.
  • Ensure compliance with enterprise security, privacy, and regulatory requirements.
  • Partner with cybersecurity teams to implement platform hardening and vulnerability remediation.
Monitoring & Reliability Engineering
  • Implement platform observability, monitoring, and operational dashboards.
  • Configure logging, alerting, performance monitoring, and incident management processes.
  • Optimize platform performance, cost, scalability, and reliability.
  • Support production operations and resolve platform issues.
Collaboration & Technical Leadership
  • Collaborate with architects, data engineers, AI engineers, security teams, and business stakeholders.
  • Provide technical guidance and platform best practices.
  • Participate in architecture reviews and platform roadmap planning.
  • Mentor junior engineers and contribute to engineering excellence initiatives.
Required Qualifications
  • Bachelor's or master’s degree in computer science, Engineering, IT, or a related field.
  • 5+ years of experience in Data, Platform, or Cloud Engineering.
  • 3+ years of hands‑on experience with the Databricks Lakehouse Platform.
  • Strong expertise in Delta Lake, Unity Catalog, MLflow, Databricks Workflows, Structured Streaming, PySpark, and Spark SQL.
  • Experience working with cloud platforms such as Azure, AWS, or GCP.
  • Proficiency in Python and SQL.
  • Strong knowledge of DevOps, CI/CD, Infrastructure as Code (IaC), and platform automation.
  • Hands‑on experience with Terraform, GitHub Actions, Azure DevOps, or equivalent CI/CD tools.
Preferred Qualifications
  • Experience with Generative AI, Agentic AI, and LLM-based applications.
  • Experience integrating Databricks with Snowflake and enterprise AI platforms.
  • Knowledge of Kubernetes, Docker, APIs, Kafka, and event‑driven architectures.
  • Databricks Certified Professional or Associate certifications.
  • Experience supporting enterprise‑scale Data & AI platforms.
Key Success Metrics
  • Platform availability and reliability.
  • Deployment automation and operational efficiency.
  • Security and compliance adherence.
  • Data pipeline performance and scalability.
  • AI/ML platform adoption and productivity improvements.
  • Platform cost optimization and governance effectiveness.
Ideal Candidate Profile

A hands‑on engineer who can build, configure, integrate, automate, secure, and operationalize Databricks as an enterprise Data & AI platform while enabling scalable DataOps, MLOps, and AI solutions across the organization.

One-line executive summary:

Own and engineer the Databricks platform end-to-end, enabling enterprise‑scale Data, AI, ML, and Agentic AI solutions through automation, integration, governance, security, and operational excellence.

Our Commitment to a Culture of Inclusion & Belonging

Ecolab is committed to fair and equal treatment of associates and applicants and furthering the principles of Equal Opportunity to Employment. We will recruit, hire, promote, transfer and provide opportunities for advancement based on individual qualifications and job performance in all matters affecting employment, compensation, benefits, working conditions, and opportunities for advancement. Ecolab will not discriminate against any associate or applicant for employment because of race, religion, color, creed, national origin,citizenship status, sex, sexual orientation, gender identity and expressions, genetic information, marital status, age, or disability.

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