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Sr Data Engineer (LATAM Remote)
Up Labs
MexicoRemote11mo ago
- Employment
- Full-time
- Seniority
- Senior
About the role
Overview
Technical Challenge
Responsibilities
- Build and maintain scalable batch and streaming data pipelines that ingest, transform, and serve data for analytics and downstream applications.
- Develop and operate backend data services and APIs to enable secure, reliable access to curated datasets and metrics.
- Translate analytics and business intelligence needs into trusted data models, transformations, and reusable datasets.
- Implement Python-based solutions for data processing and analysis.
- Manage and maintain highly efficient data architectures, ensuring scalability and performance.
- Develop and maintain APIs (REST, gRPC) to serve data to internal or external systems.
- Build and refine CI/CD processes to improve data workflows and ensure seamless deployments.
- Implement and maintain cloud and DevOps foundations (IaC, CI/CD, containers, orchestration) to ensure secure, repeatable, and scalable delivery of AI services.
- Collaborate with teams across engineering, data science, and product to deliver robust data solutions.
- Apply deep knowledge of data engineering best practices and frameworks, ensuring data integrity and security.
- Work across multiple cloud environments such as GCP, Azure and AWS.
Required Skills
- Strong data engineering experience delivering production-grade pipelines and data platforms, with an emphasis on reliability and maintainability.
- Backend development capability, including writing clean, testable services and pipeline code in Python.
- Advanced SQL skills, including building complex transformations and optimizing query performance.
- Experience working with relational databases such as PostgreSQL, including schema design and performance tuning.
- Working knowledge of Databricks for data processing and platform usage in support of data engineering workloads.
- Experience using dbt to build, version, and manage analytics transformations and models.
- Work across multiple cloud environments such as GCP, Azure and AWS.
- Ability to apply foundational DevOps and cloud infrastructure practices—monitoring, CI/CD, environment management, and reliability—consistent with DevOps & Cloud Infrastructure expectations.
Preferred Skills
- Experience working with Snowflake for cloud data warehousing, modeling, and performance optimization.
- Familiarity applying GenAI to data workflows, such as data enrichment, quality checks, or analytics copilots.
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