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Senior Data Engineer

Buenos Aires, Buenos Aires, Argentina

Pay
Salary not listed in the saved posting
Work setup
Unconfirmed
Employment
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Apply at Blend360

What you’ll work on

Full posting
  • Maintain, optimize, and automate existing code repositories in GitHub.

  • Design and build modular, reusable code components to support multiple journeys and reduce duplication.

  • Develop and manage automated data pipelines in Databricks to support Journey Analytics datasets and downstream reporting.

From the employer’s posting
Responsibilities Maintain, optimize, and automate existing code repositories in GitHub. Refactor legacy code to simplify maintenance, updates, and reuse across multiple use cases.
Refactor legacy code to simplify maintenance, updates, and reuse across multiple use cases. Design and build modular, reusable code components to support multiple journeys and reduce duplication. Develop and manage automated data pipelines in Databricks to support Journey Analytics datasets and downstream reporting.
Design and build modular, reusable code components to support multiple journeys and reduce duplication. Develop and manage automated data pipelines in Databricks to support Journey Analytics datasets and downstream reporting. Consolidate key KPIs, metrics, and attributes into standardized data structures to enable flexible journey views.

What you’ll bring

All qualifications

Core experience

  • Strong experience working with GitHub repositories and version control workflows.
  • Hands-on experience developing and maintaining data pipelines in Databricks.
  • Proven experience refactoring and maintaining legacy codebases.
  • Strong understanding of data modeling and reusable component design.
  • Experience building scalable data models for analytics and reporting use cases.
  • Ability to work in cross-functional environments and contribute to continuous improvement.
Qualification wording
Strong experience working with GitHub repositories and version control workflows.
Hands-on experience developing and maintaining data pipelines in Databricks.
Proven experience refactoring and maintaining legacy codebases.
Strong understanding of data modeling and reusable component design.
Experience building scalable data models for analytics and reporting use cases.
Ability to work in cross-functional environments and contribute to continuous improvement.

Tools in this posting

  • AWS
  • Databricks
  • Snowflake
Source — Tool mentions in context
Additional Information - Certifications in AWS (we are AWS Partners), Databricks, and Snowflake. - Access to AI learning paths to stay up to date with the latest technologies.
Build, maintain, and optimize scalable data solutions to support Journey Analytics initiatives, focusing on code maintainability, reusable components, and reliable data pipelines. This role is responsible for maintaining and refactoring existing codebases, developing modular components, and ensuring high-quality, performant datasets for analytics and reporting use cases. The ideal candidate has strong experience working with code repositories, building data pipelines in Databricks, and designing scalable data models to support evolving analytics needs in cross-functional environments. Responsibilities
- Design and build modular, reusable code components to support multiple journeys and reduce duplication. - Develop and manage automated data pipelines in Databricks to support Journey Analytics datasets and downstream reporting. - Consolidate key KPIs, metrics, and attributes into standardized data structures to enable flexible journey views.
- Strong experience working with GitHub repositories and version control workflows. - Hands-on experience developing and maintaining data pipelines in Databricks. - Proven experience refactoring and maintaining legacy codebases.
- Ability to work independently and take ownership of initiatives after receiving high-level direction, driving tasks forward with minimal supervision. - Experience using Genie (Databricks) (Plus). Additional Information

Job description

View original posting ↗

Job Description

Build, maintain, and optimize scalable data solutions to support Journey Analytics initiatives, focusing on code maintainability, reusable components, and reliable data pipelines. This role is responsible for maintaining and refactoring existing codebases, developing modular components, and ensuring high-quality, performant datasets for analytics and reporting use cases.

The ideal candidate has strong experience working with code repositories, building data pipelines in Databricks, and designing scalable data models to support evolving analytics needs in cross-functional environments.

Responsibilities

  • Maintain, optimize, and automate existing code repositories in GitHub.
  • Refactor legacy code to simplify maintenance, updates, and reuse across multiple use cases.
  • Design and build modular, reusable code components to support multiple journeys and reduce duplication.
  • Develop and manage automated data pipelines in Databricks to support Journey Analytics datasets and downstream reporting.
  • Consolidate key KPIs, metrics, and attributes into standardized data structures to enable flexible journey views.
  • Build and maintain scalable data models to support current and future journey analytics use cases.
  • Ensure data quality, performance, and reliability across data pipelines and analytics datasets.
  • Collaborate with analytics and engineering teams to improve data processes and architecture.

Qualifications

  • Strong experience working with GitHub repositories and version control workflows.
  • Hands-on experience developing and maintaining data pipelines in Databricks.
  • Proven experience refactoring and maintaining legacy codebases.
  • Strong understanding of data modeling and reusable component design.
  • Experience building scalable data models for analytics and reporting use cases.
  • Strong focus on data quality, performance, and reliability.
  • Ability to work in cross-functional environments and contribute to continuous improvement.
  • Ability to work independently and take ownership of initiatives after receiving high-level direction, driving tasks forward with minimal supervision.
  • Experience using Genie (Databricks) (Plus).

Additional Information

  • Certifications in AWS (we are AWS Partners), Databricks, and Snowflake.
  • Access to AI learning paths to stay up to date with the latest technologies.
  • Study plans, courses, and additional certifications tailored to your role.
  • Access to Udemy Business, offering thousands of courses to boost your technical and soft skills.
  • English lessons to support your professional communication.
  • Travel opportunities to attend industry conferences and meet clients.
  • Career development plans and mentorship programs to help shape your path.
  • Special day rewards to celebrate birthdays, work anniversaries, and other personal milestones.
  • Company-provided equipment.
  • Flexible working options to help you strike the right balance.
  • Other benefits may vary according to your location in LATAM. For detailed information regarding the benefits applicable to your specific location, please consult with one of our recruiters.

Company Description

Blend is a premier AI services provider, committed to co-creating meaningful impact for its clients through the power of data science, AI, technology, and people. With a mission to fuel bold visions, Blend tackles significant challenges by seamlessly aligning human expertise with artificial intelligence. The company is dedicated to unlocking value and fostering innovation for its clients by harnessing world-class people and data-driven strategy. We believe that the power of people and AI can have a meaningful impact on your world, creating more fulfilling work and projects for our people and clients. For more information, visit www.blend360.com  

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Source & posting history

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Pay

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Location & working pattern

Buenos Aires, Buenos Aires, Argentina

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Status in our records
Active
First seen by us
Jul 28, 2026
Recorded sightings
171
Last seen by us
Sep 26, 2026

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