Data Engineer I, LATAM CARPOOL
at Amazon
Posted 4 hours ago
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- Compensation
- Not specified
- City
- Not specified
- Country
- Mexico, Brazil
Currency: Not specified
The LATAM Data Engineer is a technical contributor responsible for building and maintaining data pipelines, AI-ready data warehouses, and scalable infrastructure that powers GenAI reasoning agents and BI solutions across Amazon's Mexico and Brazil Retail operations. This role blends traditional data engineering with AI agentic frameworks to enable Retail stakeholders in MX and BR to access accurate, real-time data through dashboards and conversational AI interfaces. You will contribute to Amazon LATAM's data and AI center of excellence, building infrastructure for the GenAI backend and ensuring consistent data across data sources. Key responsibilities include developing AI-ready data warehouses, designing scalable ETL/ELT pipelines, and enabling reasoning agent data infrastructure.
The team is Amazon LATAM's data and AI center of excellence, serving internal users across Mexico and Brazil. We build the infrastructure that powers our GenAI backend—a general-purpose reasoning engine that connects to any data source and enables rapid deployment of AI solutions.
Key job responsibilities
1. AI-Ready Data Warehouse Development
Build and maintain the common metric warehouse that serves as the single source of truth for all GenAI reasoning agents. This ensures every agent consults consistent, accurate data when analyzing business metrics, generating hypotheses, and validating insights.
2. Data Pipeline Engineering
Design and implement scalable ETL/ELT pipelines that power both traditional BI and AI solutions:
3. Reasoning Agent Data Infrastructure
Enable reasoning agentic solutions by building robust data foundations that support:
- Document Analysis Workflows* Pipelines feeding multi-phase workflows where agents read, analyze, generate hypotheses, and validate against real data
- Financial Data Integration: P&L account data with historical patterns for automated analysis and hypothesis generation
- Selection Analysis Data* Funnel and discoverability metrics at product and buying-situation granularity for automated decision support
Basic Qualifications
- 1+ years of data engineering experience- Experience with data modeling, warehousing and building ETL pipelines
- Experience with one or more query language (e.g., SQL, PL/SQL, DDL, MDX, HiveQL, SparkSQL, Scala)
- Experience with one or more scripting language (e.g., Python, KornShell)
Preferred Qualifications
- Experience with big data technologies such as: Hadoop, Hive, Spark, EMR- Experience with any ETL tool like, Informatica, ODI, SSIS, BODI, Datastage, etc.
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