Data Engineer
Bangalore, India
- Pay
- Salary not listed in the saved posting
- Work setup
- Unconfirmed
- Employment
- Unconfirmed
What you’ll work on
Full postingTranslate complex business requirements into robust data solutions, integrating insights from diverse non-ERP sources with our Enterprise Data Warehouse (EDW).
Design, build, and optimize scalable ELT/ETL pipelines to ingest, transform, and publish data into the Snowflake Data Cloud.
Develop and maintain high-quality, analytics-ready data models using dbt, emphasizing modular design, reusability, rigorous testing, and maintainability.
From the employer’s posting
Conduct in-depth exploratory data analysis to uncover trends and patterns in structured and unstructured datasets. Translate complex business requirements into robust data solutions, integrating insights from diverse non-ERP sources with our Enterprise Data Warehouse (EDW). Design, build, and optimize scalable ELT/ETL pipelines to ingest, transform, and publish data into the Snowflake Data Cloud.
Translate complex business requirements into robust data solutions, integrating insights from diverse non-ERP sources with our Enterprise Data Warehouse (EDW). Design, build, and optimize scalable ELT/ETL pipelines to ingest, transform, and publish data into the Snowflake Data Cloud. Develop and maintain high-quality, analytics-ready data models using dbt, emphasizing modular design, reusability, rigorous testing, and maintainability.
Design, build, and optimize scalable ELT/ETL pipelines to ingest, transform, and publish data into the Snowflake Data Cloud. Develop and maintain high-quality, analytics-ready data models using dbt, emphasizing modular design, reusability, rigorous testing, and maintainability. Design and implement a reusable semantic layer that adheres to architectural standards and supports various consumption patterns (AI, agentic solutions, dashboards).
What you’ll bring
All qualificationsCore experience
- Bachelor’s degree in Computer Science, Engineering, Information Systems, or a related technical field, or equivalent practical experience.
- 5+ years of progressive experience in data engineering, with a proven track record in cloud data warehousing and modern data platform implementations.
- 2+ years of hands-on experience developing AI and agentic solutions, specifically on platforms like Snowflake, AWS, or GCP.
- Deep expertise with the Snowflake Data Cloud, encompassing its architecture, security model, and operational best practices.
- Strong proficiency with dbt (Data Build Tool) for designing, developing, and maintaining data models, including automated testing and CI/CD integration.
- 5+ years of experience with leading BI/reporting tools such as Sigma or Power BI.
Preferred experience
- Experience with data quality, observability, and lineage tools to enhance monitoring, validation, and governance across complex data pipelines.
- Familiarity with advanced Snowflake capabilities (e.g., zero-copy cloning, secure data sharing, external tables, Snowpark, dynamic tables, MCP gateways).
- Solid understanding of data and solution architecture principles.
Qualification wording
Bachelor’s degree in Computer Science, Engineering, Information Systems, or a related technical field, or equivalent practical experience.
5+ years of progressive experience in data engineering, with a proven track record in cloud data warehousing and modern data platform implementations.
2+ years of hands-on experience developing AI and agentic solutions, specifically on platforms like Snowflake, AWS, or GCP.
Deep expertise with the Snowflake Data Cloud, encompassing its architecture, security model, and operational best practices.
Strong proficiency with dbt (Data Build Tool) for designing, developing, and maintaining data models, including automated testing and CI/CD integration.
5+ years of experience with leading BI/reporting tools such as Sigma or Power BI.
Experience with data quality, observability, and lineage tools to enhance monitoring, validation, and governance across complex data pipelines.
Familiarity with advanced Snowflake capabilities (e.g., zero-copy cloning, secure data sharing, external tables, Snowpark, dynamic tables, MCP gateways).
Solid understanding of data and solution architecture principles.
Tools in this posting
- Python
- SQL
- AWS
- dbt
- Sigma
- Snowflake
- Tableau
- Google Cloud (GCP)
- Power BI
Source — Tool mentions in context
- Strong proficiency with dbt (Data Build Tool) for designing, developing, and maintaining data models, including automated testing and CI/CD integration. - Advanced SQL skills and practical working knowledge of Python for data manipulation and automation. - 5+ years of experience with leading BI/reporting tools such as Sigma or Power BI.
- 5+ years of progressive experience in data engineering, with a proven track record in cloud data warehousing and modern data platform implementations. - 2+ years of hands-on experience developing AI and agentic solutions, specifically on platforms like Snowflake, AWS, or GCP. - Deep expertise with the Snowflake Data Cloud, encompassing its architecture, security model, and operational best practices.
- Design, build, and optimize scalable ELT/ETL pipelines to ingest, transform, and publish data into the Snowflake Data Cloud. - Develop and maintain high-quality, analytics-ready data models using dbt, emphasizing modular design, reusability, rigorous testing, and maintainability. - Design and implement a reusable semantic layer that adheres to architectural standards and supports various consumption patterns (AI, agentic solutions, dashboards).
- Deep expertise with the Snowflake Data Cloud, encompassing its architecture, security model, and operational best practices. - Strong proficiency with dbt (Data Build Tool) for designing, developing, and maintaining data models, including automated testing and CI/CD integration. - Advanced SQL skills and practical working knowledge of Python for data manipulation and automation.
- Advanced SQL skills and practical working knowledge of Python for data manipulation and automation. - 5+ years of experience with leading BI/reporting tools such as Sigma or Power BI. Preferred Qualifications
- Translate complex business requirements into robust data solutions, integrating insights from diverse non-ERP sources with our Enterprise Data Warehouse (EDW). - Design, build, and optimize scalable ELT/ETL pipelines to ingest, transform, and publish data into the Snowflake Data Cloud. - Develop and maintain high-quality, analytics-ready data models using dbt, emphasizing modular design, reusability, rigorous testing, and maintainability.
- Design and implement a reusable semantic layer that adheres to architectural standards and supports various consumption patterns (AI, agentic solutions, dashboards). - Leverage Snowflake Cortex to integrate AI/LLM capabilities directly into data pipelines, enabling advanced analytics. - Design and develop data consumption layers, including dashboards, reports, conversational analytics, and agentic solutions.
- 2+ years of hands-on experience developing AI and agentic solutions, specifically on platforms like Snowflake, AWS, or GCP. - Deep expertise with the Snowflake Data Cloud, encompassing its architecture, security model, and operational best practices. - Strong proficiency with dbt (Data Build Tool) for designing, developing, and maintaining data models, including automated testing and CI/CD integration.
- Experience with data quality, observability, and lineage tools to enhance monitoring, validation, and governance across complex data pipelines. - Familiarity with advanced Snowflake capabilities (e.g., zero-copy cloning, secure data sharing, external tables, Snowpark, dynamic tables, MCP gateways). - Solid understanding of data and solution architecture principles.
- Solid understanding of data and solution architecture principles. - Exposure to other BI/reporting tools (e.g., Tableau, ThoughtSpot) and a keen understanding of diverse downstream analytics consumption patterns. Why Cisco?
Job description
Meet the Team
Join Cisco's Commerce Intelligence Data & Analytics team, a pivotal group delivering seamless intelligence, advanced analytics, and cutting-edge agentic experiences across our business operations. Our mission is to build a scalable, unified, and AI-ready data foundation that drives high-impact business decisions and automated actions. We achieve this by blending innovation, deep process knowledge, technical expertise, and a relentless focus on business impact, ultimately enhancing operational efficiency and data-driven decision-making at scale.
Your Impact
As a Data Engineer, you will be instrumental in shaping our data landscape. You'll dive deep into operational processes, explore diverse source systems, and analyze complex data platforms to connect critical commerce operational needs. Your expertise will drive the design, build, and maintenance of a robust data ecosystem, enabling advanced analytical capabilities, AI, and agentic solutions. You'll be responsible for end-to-end ETL/ELT pipeline development for both structured and unstructured data, ensuring data threading and transformation within our Golden layer working with the extended team US time zones. A key aspect of your role will be collaborating with business functions across various time zones to design and own a reusable semantic layer, powering consumption across AI, agentic solutions, dashboards, and various applications.
Responsibilities
Conduct in-depth exploratory data analysis to uncover trends and patterns in structured and unstructured datasets.
Translate complex business requirements into robust data solutions, integrating insights from diverse non-ERP sources with our Enterprise Data Warehouse (EDW).
Design, build, and optimize scalable ELT/ETL pipelines to ingest, transform, and publish data into the Snowflake Data Cloud.
Develop and maintain high-quality, analytics-ready data models using dbt, emphasizing modular design, reusability, rigorous testing, and maintainability.
Design and implement a reusable semantic layer that adheres to architectural standards and supports various consumption patterns (AI, agentic solutions, dashboards).
Leverage Snowflake Cortex to integrate AI/LLM capabilities directly into data pipelines, enabling advanced analytics.
Design and develop data consumption layers, including dashboards, reports, conversational analytics, and agentic solutions.
Champion and enforce data quality, observability, lineage, governance, and access control standards across our AI-ready data architecture.
Applies working knowledge of databases, relational databases, cloud services, and scripting languages
Contributes to data quality and compliance, including cleansing and scrubbing of data, data integrations and data quality framework
Collaborate strategically with data architects, analysts, and business stakeholders to define long-term data strategies and deliver scalable, reliable data solutions.
Establish and enforce technical governance, CI/CD best practices, and rigorous version control to ensure the integrity, security, and scalability of our modern data stack.
Demonstrated experience applying Agile, Scrum, or Kanban methodologies within a data engineering environment.
A self-starter with proven expertise to deliver outcomes with minimal supervision
Minimum Qualifications
Bachelor’s degree in Computer Science, Engineering, Information Systems, or a related technical field, or equivalent practical experience.
5+ years of progressive experience in data engineering, with a proven track record in cloud data warehousing and modern data platform implementations.
2+ years of hands-on experience developing AI and agentic solutions, specifically on platforms like Snowflake, AWS, or GCP.
Deep expertise with the Snowflake Data Cloud, encompassing its architecture, security model, and operational best practices.
Strong proficiency with dbt (Data Build Tool) for designing, developing, and maintaining data models, including automated testing and CI/CD integration.
Advanced SQL skills and practical working knowledge of Python for data manipulation and automation.
5+ years of experience with leading BI/reporting tools such as Sigma or Power BI.
Preferred Qualifications
Experience with data quality, observability, and lineage tools to enhance monitoring, validation, and governance across complex data pipelines.
Familiarity with advanced Snowflake capabilities (e.g., zero-copy cloning, secure data sharing, external tables, Snowpark, dynamic tables, MCP gateways).
Solid understanding of data and solution architecture principles.
Exposure to other BI/reporting tools (e.g., Tableau, ThoughtSpot) and a keen understanding of diverse downstream analytics consumption patterns.
Why Cisco?
At Cisco, we’re revolutionizing how data and infrastructure connect and protect organizations in the AI era – and beyond. We’ve been innovating fearlessly for 40 years to create solutions that power how humans and technology work together across the physical and digital worlds. These solutions provide customers with unparalleled security, visibility, and insights across the entire digital footprint.
Fueled by the depth and breadth of our technology, we experiment and create meaningful solutions. Add to that our worldwide network of doers and experts, and you’ll see that the opportunities to grow and build are limitless. We work as a team, collaborating with empathy to make really big things happen on a global scale. Because our solutions are everywhere, our impact is everywhere.
We are Cisco, and our power starts with you.
Disclaimer
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Source & posting history
Source notes
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- Pay
No pay amount identified in the saved description.
- Location & working pattern
Bangalore, India
Working pattern and location restrictions need checking in the full posting.
- Work authorization
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- Status in our records
- Active
- First seen by us
- Sep 6, 2026
- Recorded sightings
- 71
- Last seen by us
- Oct 9, 2026
These dates show when we found the listing. Check the employer’s website to confirm it is still accepting applications.
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