Azure Lead Data Engineer Guidewire

EXL

Gurugram District

On-site

INR 3,500,000 - 8,000,000

Full time

13 days ago
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Job summary

EXL is seeking an experienced Azure Lead Data Engineer with Guidewire expertise to lead the design and delivery of scalable data pipelines for insurance platforms. You will drive ETL/ELT workflows using Azure data services, Snowflake, and DBT, while ensuring data governance and security.

You will analyze Guidewire data models, collaborate with stakeholders, and mentor the data engineering team to deliver reliable, high-performance solutions across cloud ecosystems.

Qualifications

  • 8+ years of experience in data engineering or related roles.
  • Hands-on with the Azure Cloud Platform and Azure data services.
  • Proven expertise in Azure Data Factory for data pipelines.
  • Strong experience with Azure Data Lake Storage and cloud-based data integration architectures.
  • Extensive experience with SQL for data transformation and reporting.
  • Strong working knowledge of Guidewire InsuranceSuite and data integrations.
  • Ability to lead technical discussions with stakeholders and teams.

Responsibilities

  • Lead the design and development of scalable ETL/ELT data pipelines using Azure Data Factory, Snowflake, DBT, and other Azure data services.
  • Design and manage data integration workflows from multiple source systems, including Guidewire applications and insurance data platforms, into Snowflake and Azure environments.
  • Analyze and understand Guidewire data models, policy, claims, billing, underwriting, and related datasets.
  • Develop efficient and optimized SQL queries for data extraction, transformation, validation, and reporting.
  • Lead technical discussions with business stakeholders, Guidewire teams, architects, and data consumers to translate requirements into scalable solutions.
  • Provide technical leadership and review data models and pipeline designs.
  • Monitor, troubleshoot, and optimize data pipelines for performance, reliability, and scalability.
  • Implement data quality, governance, metadata, lineage, and documentation standards.
  • Develop reusable data engineering frameworks and best practices.
  • Collaborate with architects, analysts, DevOps, QA, and cloud teams in a cloud-native environment.
  • Support migration of legacy insurance data platforms into Azure and Snowflake.
  • Implement CI/CD processes for data engineering workflows.
  • Ensure data solutions meet security, governance, and regulatory requirements.

Skills

Azure Cloud Platform
Azure Data Factory
Azure Data Lake Storage
Snowflake
DBT
SQL
Guidewire InsuranceSuite
Guidewire data models
ETL/ELT pipelines
Leadership

Education

Bachelor’s or Master’s degree in Computer Science, Data Engineering, Information Systems, or a related field

Tools

Azure Data Factory (ADF)
Azure Data Lake Storage (ADLS)
Snowflake
DBT
SQL
Guidewire

Job description

Job Description:

Job Description: Azure Lead Data Engineer + Guidewire Role Overview

We are seeking an experienced Azure Lead Data Engineer with Guidewire expertise to lead the design, development, and delivery of scalable data engineering solutions for insurance and enterprise data platforms. The ideal candidate will have strong hands-on experience with Azure Data Factory (ADF), Azure Data Lake, Snowflake, DBT, SQL, and cloud-based data integration, along with a solid understanding of Guidewire InsuranceSuite data and integrations.

The candidate will provide technical leadership, work closely with business and technology stakeholders, and ensure the delivery of reliable, high-performance, and governed data pipelines.

Key Responsibilities

  • Lead the design and development of scalable ETL/ELT data pipelines using Azure Data Factory, Snowflake, DBT, and other Azure data services.
  • Design and manage data integration workflows from multiple source systems, including Guidewire applications and insurance data platforms, into Snowflake and Azure-based data environments.
  • Analyze and understand Guidewire data models, business entities, policy, claims, billing, underwriting, and related insurance datasets.
  • Develop efficient and optimized SQL queries for data extraction, transformation, validation, and reporting.
  • Lead technical discussions with business stakeholders, Guidewire teams, architects, and data consumers to translate business requirements into scalable technical solutions.
  • Provide technical leadership and guidance to data engineering team members and review code, data models, and pipeline designs.
  • Monitor, troubleshoot, and optimize data pipelines to ensure high performance, reliability, scalability, and availability.
  • Implement and enforce data quality, governance, metadata, lineage, and documentation standards.
  • Develop and maintain reusable data engineering frameworks and best practices.
  • Collaborate with data architects, analysts, DevOps, QA, and cloud engineering teams in a cloud-native environment.
  • Support migration and modernization of legacy insurance data platforms into Azure and Snowflake.
  • Implement and support CI/CD processes for data engineering workflows.
  • Ensure data solutions comply with enterprise security, governance, and regulatory requirements.

Must-Have Skills

  • 8+ years of experience in Data Engineering, Data Integration, or related roles.
  • Strong hands-on experience with the Azure Cloud Platform and Azure data services.
  • Proven expertise in Azure Data Factory (ADF) for designing, orchestrating, automating, and monitoring complex data pipelines.
  • Strong experience with Azure Data Lake Storage (ADLS) and cloud-based data integration architectures.
  • Extensive experience with SQL, including complex queries, performance optimization, and data transformation.
  • Hands-on experience with Snowflake and SnowSQL for cloud data warehousing and data engineering.
  • Strong working knowledge of DBT (Data Build Tool) for data transformation, testing, and documentation.
  • Experience working with large-scale and complex enterprise datasets.
  • Strong understanding of Guidewire InsuranceSuite, Guidewire data models, or Guidewire-based data integrations.
  • Experience working with insurance domain data such as Policy, Claims, Billing, Customer, Producer, and Underwriting data.
  • Strong problem-solving, communication, stakeholder management, and technical leadership skills.

Guidewire-Specific Requirements

  • Experience integrating data from Guidewire applications into enterprise data platforms.
  • Strong understanding of Guidewire data structures and insurance business processes.
  • Experience with Guidewire PolicyCenter, ClaimCenter, and/or BillingCenter data is highly preferred.
  • Ability to work with Guidewire APIs, extracts, events, or integration mechanisms where applicable.
  • Experience in designing downstream data pipelines and analytics solutions for Guidewire-generated data.
  • Understanding of insurance data governance, reconciliation, and data quality requirements.

Good-to-Have Skills

  • Experience with Azure Synapse Analytics.
  • Experience with Azure Functions.
  • Knowledge of Python and/or PySpark for custom data transformations and engineering solutions.
  • Experience with Databricks is an added advantage.
  • Experience with legacy technologies such as DataStage or Netezza.
  • Strong understanding of CI/CD pipelines and DevOps practices for data workflows.
  • Experience with data governance, metadata management, data catalog, and data lineage tools.
  • Exposure to Power BI, Tableau, or other BI and analytics tools.
  • Experience in insurance industry data modernization and cloud migration projects.

Qualifications

  • Bachelor’s or Master’s degree in Computer Science, Data Engineering, Information Systems, or a related field.
  • 8+ years of experience in Data Engineering with strong exposure to Azure and cloud data platforms.
  • Demonstrated experience leading data engineering teams or providing technical leadership on enterprise data projects.
  • Strong understanding of modern cloud data architecture, ETL/ELT, data warehousing, and data governance.
  • Excellent communication and collaboration skills with the ability to work across business and technical teams.
Responsibilities

Key Responsibilities

  • Lead the design and development of scalable ETL/ELT data pipelines using Azure Data Factory, Snowflake, DBT, and other Azure data services.
  • Design and manage data integration workflows from multiple source systems, including Guidewire applications and insurance data platforms, into Snowflake and Azure-based data environments.
  • Analyze and understand Guidewire data models, business entities, policy, claims, billing, underwriting, and related insurance datasets.
  • Develop efficient and optimized SQL queries for data extraction, transformation, validation, and reporting.
  • Lead technical discussions with business stakeholders, Guidewire teams, architects, and data consumers to translate business requirements into scalable technical solutions.
  • Provide technical leadership and guidance to data engineering team members and review code, data models, and pipeline designs.
  • Monitor, troubleshoot, and optimize data pipelines to ensure high performance, reliability, scalability, and availability.
  • Implement and enforce data quality, governance, metadata, lineage, and documentation standards.
  • Develop and maintain reusable data engineering frameworks and best practices.
  • Collaborate with data architects, analysts, DevOps, QA, and cloud engineering teams in a cloud-native environment.
  • Support migration and modernization of legacy insurance data platforms into Azure and Snowflake.
  • Implement and support CI/CD processes for data engineering workflows.
  • Ensure data solutions comply with enterprise security, governance, and regulatory requirements.
Qualifications

Must-Have Skills

  • 8+ years of experience in Data Engineering, Data Integration, or related roles.
  • Strong hands-on experience with the Azure Cloud Platform and Azure data services.
  • Proven expertise in Azure Data Factory (ADF) for designing, orchestrating, automating, and monitoring complex data pipelines.
  • Strong experience with Azure Data Lake Storage (ADLS) and cloud-based data integration architectures.
  • Extensive experience with SQL, including complex queries, performance optimization, and data transformation.
  • Hands-on experience with Snowflake and SnowSQL for cloud data warehousing and data engineering.
  • Strong working knowledge of DBT (Data Build Tool) for data transformation, testing, and documentation.
  • Experience working with large-scale and complex enterprise datasets.
  • Strong understanding of Guidewire InsuranceSuite, Guidewire data models, or Guidewire-based data integrations.
  • Experience working with insurance domain data such as Policy, Claims, Billing, Customer, Producer, and Underwriting data.
  • Strong problem-solving, communication, stakeholder management, and technical leadership skills.

Guidewire-Specific Requirements

  • Experience integrating data from Guidewire applications into enterprise data platforms.
  • Strong understanding of Guidewire data structures and insurance business processes.
  • Experience with Guidewire PolicyCenter, ClaimCenter, and/or BillingCenter data is highly preferred.
  • Ability to work with Guidewire APIs, extracts, events, or integration mechanisms where applicable.
  • Experience in designing downstream data pipelines and analytics solutions for Guidewire-generated data.
  • Understanding of insurance data governance, reconciliation, and data quality requirements.

Good-to-Have Skills

  • Experience with Azure Synapse Analytics.
  • Experience with Azure Functions.
  • Knowledge of Python and/or PySpark for custom data transformations and engineering solutions.
  • Experience with Databricks is an added advantage.
  • Experience with legacy technologies such as DataStage or Netezza.
  • Strong understanding of CI/CD pipelines and DevOps practices for data workflows.
  • Experience with data governance, metadata management, data catalog, and data lineage tools.
  • Exposure to Power BI, Tableau, or other BI and analytics tools.
  • Experience in insurance industry data modernization and cloud migration projects.

Qualifications

  • Bachelor’s or Master’s degree in Computer Science, Data Engineering, Information Systems, or a related field.
  • 8+ years of experience in Data Engineering with strong exposure to Azure and cloud data platforms.
  • Demonstrated experience leading data engineering teams or providing technical leadership on enterprise data projects.
  • Strong understanding of modern cloud data architecture, ETL/ELT, data warehousing, and data governance.
  • Excellent communication and collaboration skills with the ability to work across business and technical teams.

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