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Ecolab·3 hours ago
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Microsoft Fabric Data Engineer

Bengaluru, IndiaMid · 2-5 yearsData Engineer

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Must-have skills for this role

  • microsoft fabric
  • python
  • pyspark
  • sql

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What you'll do

  • Design and develop scalable data engineering solutions using Microsoft Fabric Lakehouse, Data Factory, pipelines and notebooks.
  • Build ingestion, transformation and medallion-layer patterns for reliable, reusable and governed data products.
  • Design and develop AI Agents, Data Agents, ontology-driven solutions and Retrieval-Augmented Generation (RAG) experiences.
  • Create high-quality semantic models, relationships, calculations and DAX measures for analytics and AI consumption.
  • Use Python, PySpark and SQL to develop production-grade transformations, orchestration and validation logic.
  • Apply Semantic Link Labs and Fabric Notebooks to automate semantic-model engineering, testing, documentation and operational tasks.
  • Integrate data and AI capabilities into web applications, APIs and business workflows.
  • Collaborate with architects, platform engineers, product owners and business stakeholders from discovery through production deployment.
  • Contribute to engineering standards, reusable accelerators, technical documentation and knowledge sharing across the CoE.

What they're looking for

  • Bachelor’s degree in computer science, data engineering, artificial intelligence or a related discipline, or equivalent relevant experience.
  • Microsoft Certified: Fabric Analytics Engineer Associate (DP-600) is mandatory.
  • Strong Microsoft Fabric data engineering experience across Lakehouse, pipelines, notebooks and OneLake.
  • Python, PySpark and advanced SQL for data processing and transformation.
  • Semantic modeling, DAX, dimensional modeling and performance optimization.
  • Knowledge of Agentic AI frameworks, RAG patterns, embeddings, vector search and LLM integration.
  • Hands-on understanding of AI Agents, Data Agents, ontology concepts and AI-ready semantic models.
  • Working knowledge of Snowflake and Databricks.
  • Git, CI/CD, REST APIs, security fundamentals and production deployment practices.
  • 3-5 years of relevant experience in data engineering, analytics engineering or AI solution development.

Nice to have

  • Related certifications such as DP-203, AI-102 or PL-300 are preferred.
  • Developing AI-enabled web applications, APIs or conversational analytics experiences.
  • Azure AI services, Azure OpenAI or comparable enterprise LLM platforms.
  • Production implementation of RAG or Agentic AI solutions with evaluation, observability and responsible AI controls.
  • Databricks, Snowflake, Delta Lake and modern cloud data-platform integration.
  • Direct Lake, real-time analytics, deployment pipelines and DevOps automation.

Summarised by NextRaise from the employer’s description, which follows in full below.

Full description from employer

Role overview

Join the Fabric Center of Excellence to design and deliver modern data and AI solutions on Microsoft Fabric. The role combines data engineering, semantic modeling and Agentic AI to build scalable data products, AI Agents, Data Agents, ontologies and business-facing applications.

Key responsibilities

  • Design and develop scalable data engineering solutions using Microsoft Fabric Lakehouse, Data Factory, pipelines and notebooks.
  • Build ingestion, transformation and medallion-layer patterns for reliable, reusable and governed data products.
  • Design and develop AI Agents, Data Agents, ontology-driven solutions and Retrieval-Augmented Generation (RAG) experiences.
  • Create high-quality semantic models, relationships, calculations and DAX measures for analytics and AI consumption.
  • Use Python, PySpark and SQL to develop production-grade transformations, orchestration and validation logic.
  • Apply Semantic Link Labs and Fabric Notebooks to automate semantic-model engineering, testing, documentation and operational tasks.
  • Integrate data and AI capabilities into web applications, APIs and business workflows.
  • Collaborate with architects, platform engineers, product owners and business stakeholders from discovery through production deployment.
  • Contribute to engineering standards, reusable accelerators, technical documentation and knowledge sharing across the CoE.

Required technical capabilities

  • Strong Microsoft Fabric data engineering experience across Lakehouse, pipelines, notebooks and OneLake.
  • Python, PySpark and advanced SQL for data processing and transformation.
  • Semantic modeling, DAX, dimensional modeling and performance optimization.
  • Knowledge of Agentic AI frameworks, RAG patterns, embeddings, vector search and LLM integration.
  • Hands-on understanding of AI Agents, Data Agents, ontology concepts and AI-ready semantic models.
  • Working knowledge of Snowflake and Databricks.
  • Git, CI/CD, REST APIs, security fundamentals and production deployment practices.

POSITION 02  |  CONTINUED

Qualifications and certifications

  • Bachelor’s degree in computer science, data engineering, artificial intelligence or a related discipline, or equivalent relevant experience.
  • Microsoft Certified: Fabric Analytics Engineer Associate (DP-600) is mandatory.
  • Related certifications such as DP-203, AI-102 or PL-300 are preferred.
  • 3-5 years of relevant experience in data engineering, analytics engineering or AI solution development.

Preferred experience

  • Developing AI-enabled web applications, APIs or conversational analytics experiences.
  • Azure AI services, Azure OpenAI or comparable enterprise LLM platforms.
  • Production implementation of RAG or Agentic AI solutions with evaluation, observability and responsible AI controls.
  • Databricks, Snowflake, Delta Lake and modern cloud data-platform integration.
  • Direct Lake, real-time analytics, deployment pipelines and DevOps automation.

Behavioral competencies

  • Strong engineering discipline and an experimentation mindset.
  • Ability to translate business problems into scalable data and AI solutions.
  • Clear communication, collaborative delivery and practical documentation.
  • Commitment to security, governance, responsible AI and measurable business outcomes.

Success in this role

  • Reusable and production-ready Fabric data products.
  • Trusted semantic and ontology layers that improve analytics and AI quality.
  • Secure, useful AI Agents and Data Agents aligned with business requirements.
  • Faster delivery through automation, standards and shared engineering patterns.

Company

Ecolab
Bengaluru, India

Company facts come from this company's own listings. We only show what the postings themselves carry.

Sourced from Ecolab's careers site·first seen 24 Sept 2026·last verified 24 Sept 2026·How we source jobs

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