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Data Engineer Manager
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Where you can work
Remote
Eligibility not captured
Locations named in the listing
- Santiago, Santiago Metropolitan, Chile
View location wording from the posting
Santiago, Santiago Metropolitan Region, Chile
Role overview
Extracted from the posting. Read the employer’s full description below.
What they are looking for
- 7+ years of experience in Data Engineering.
- 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.
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- 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).
Employer description
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
Job Description
Lead, design, and scale data solutions to support Journey Analytics initiatives, with a strong focus on code quality, reusability, and reliable data platforms. This role is responsible for setting the technical direction, overseeing the evolution of data architectures, and leading a team of data engineers to deliver high-quality, performant datasets for analytics and reporting use cases.
The ideal candidate combines strong hands-on data engineering expertise with people leadership experience, and has a proven track record of driving scalable solutions in cross-functional environments.
Responsibilities
- Lead and mentor a team of data engineers, fostering best practices in coding, architecture, and data engineering standards.
- Define and drive the technical strategy for Journey Analytics data platforms, ensuring scalability, maintainability, and performance.
- Oversee the maintenance, optimization, and automation of code repositories in GitHub, ensuring high-quality and consistent development practices.
- Guide the refactoring of legacy codebases to improve maintainability, scalability, and reusability across multiple use cases.
- Drive the design and implementation of modular, reusable data components to support multiple journeys and reduce duplication.
- Oversee the development and management of automated data pipelines in Databricks, ensuring reliability and scalability for downstream consumption.
- Establish and enforce standards for scalable data modeling to support current and future analytics use cases.
- Ensure data quality, governance, performance, and reliability across all data pipelines and datasets.
- Partner with analytics, product, and engineering stakeholders to align data solutions with business needs and priorities.
- Proactively identify risks, bottlenecks, and improvement opportunities, and drive mitigation strategies at a team and platform level.
- Promote continuous improvement of data processes, documentation, and engineering practices.
Qualifications
- 7+ years of experience in Data Engineering.
- 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.
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