Amazon.com Services LLC
Technology
DataEngineer
Neural analysis suggests this role is
optimal for Mid+ candidates.
“Data Engineer at Amazon.com Services LLC. Skills: Data Engineering, AWS, ETL, Data Modeling. Develop automated ETL/ELT pipelines. Maintain automated ETL/ELT pipelines”
Industry & Context.
Query performance tuning
What They're Looking For.
Must Have
1+ years of data engineering experience, Experience with data modeling, Experience building ETL pipelines, Experience with one query language
Nice to Have
Experience with big data technologies, Experience with any ETL tool
What You'll Do.
Develop automated ETL/ELT pipelines
Maintain automated ETL/ELT pipelines
Monitor ETL/ELT pipelines
Alert on ETL/ELT issues
Optimize Gold data sets
Design dimension tables
Develop Redshift tables
Optimize Redshift tables
Develop data lake tables
Optimize data lake tables
Build data quality frameworks
Build data validation
Build data reconciliation
Build anomaly detection
Develop data security
Develop access controls
Maintain data catalogs
Maintain lineage documentation
Maintain self-service tooling
Partner with measurement scientists
Partner with marketing analysts
Partner with engineering teams
Deliver data solutions
Contribute to API-first patterns
Enable science-as-a-service consumption
How You'll Work.
Team & Collaboration
Cross-functional engineering teams; Data engineers; ML engineers; Applied scientists
Full Job Description
Within AWS Marketing the Data Science Engineering (D:SE) team builds and operates the marketing data platform that fuels attribution models, ROI measurement, customer journey analytics, and campaign optimization, enabling multi-billion dollar marketing investment decisions. Team powers AWS Marketing with a world-class marketing data model and science solutions as a service, leveraging GenAI. We're looking for a Data Engineer to help us build and scale our next-generation marketing data infrastructure (Jarvis 2.0) and GenAI initiatives. You'll work with a serverless, AWS-native stack i.e. Redshift, S3, Glue, Lambda, SageMaker, Step Functions, SNS, CloudWatch, and more — to deliver the unified marketing data model that serves new GenAI initiatives, measurement scientists, marketing analysts, and downstream APIs across AWS Marketing. You'll join a tight, high-impact team of data engineers, ML engineers, and applied scientists solving problems at the intersection of marketing analytics, data science enablement, and platform engineering. You'll experience a culture that values ownership, cross-functional collaboration, and data-driven decision making. Key job responsibilities - Develop and maintain automated ETL/ELT pipelines (with monitoring and alerting) using Python, Spark, SQL, and AWS services (S3, Glue, Lambda, Step Functions, SNS, SQS, CloudWatch). - Build and optimize the Gold data sets in marketing data model — designing fact and dimension tables that unify customer journey, web analytics, campaign, revenue, and attribution data at enterprise scale. - Develop and optimize Redshift and data lake tables using best practices for DDL, physical/logical modeling, data partitioning, compression, and query performance tuning. - Build and maintain data quality frameworks, validation, reconciliation, anomaly detection to ensure trusted, reliable data for downstream science and analytics consumers. - Develop and maintain data security, access controls, encryption, and perm
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