Sr.Data Engineer- AWS & Streaming
TUPPL Technology Inc
Fort Mill, SC, United States
26 days ago
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Role details
Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Working hours
Regular working hours
Job source
Tech stack
Amazon Web Services
Profiling
Data Validation
Information Engineering
Data Governance
Data Integrity
Extract Transform Load (ETL)
DevOps
Distributed Computing Environment
Python (Programming Language)
Cloud Services
SQL Databases
+13 more
Data Streaming
Data Processing
AWS Lambda
Cloudformation
Data Lakes
Pyspark
Apache Flink
AWS Glue
Apache Kafka
Data Management
Terraform
Stream Processing
Data Pipelines
Job description
We are seeking a Mid-Senior Data Engineer with strong expertise in AWS-based data engineering, real-time streaming technologies, and enterprise-grade data quality frameworks. The ideal candidate will design, build, and optimize scalable batch and streaming data pipelines, implement robust data validation and monitoring processes, and support mission-critical analytics platforms., * Develop and maintain scalable ETL/ELT pipelines using AWS Glue, PySpark, and Python
- Build event-driven workflows using AWS Lambda
- Design and manage real-time streaming solutions using Kafka, KSQL, and Apache Flink
- Implement and enforce comprehensive data quality frameworks, including validation, profiling, monitoring, and reconciliation
- Optimize data processing performance, scalability, reliability, and cost in cloud environments
- Collaborate with cross-functional teams to deliver reliable, production-grade data platforms and ensure data integrity across the pipeline
Requirements
- Strong hands-on experience with Python and PySpark
- Proven expertise in AWS Glue, Lambda, and other cloud-native data services
- Solid experience with the Kafka ecosystem (topics, partitions, consumer groups, streaming patterns)
- Demonstrated experience building and supporting data quality frameworks (validation rules, reconciliation checks, profiling, anomaly detection)
- Strong understanding of distributed data processing and scalable architecture patterns
Good-to-Have Skills:
- Experience with Apache Flink for real-time stream processing and stateful computations
- Knowledge of KSQL or other streaming SQL engines
- Exposure to CI/CD pipelines, IaC (Terraform/CloudFormation), and DevOps practices
- Familiarity with data lake/lakehouse architectures and table formats such as Iceberg, Delta, or Hudi
- Experience working in enterprise or financial data environments
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