Data Engineer
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Requirements
· Strong understanding of AWS architecture best practices, scalability, security, and cost optimization strategies.
· Strong hands-on experience with AWS services including Lambda, Glue ETL, Athena, S3, DynamoDB, Step Functions, EventBridge, SNS, and SQS.
· Deep experience in Apache Spark (PySpark/Scala) development, unit testing, and performance optimization.
· Strong Python programming skills using libraries such as pandas, requests, json, and awswrangler.
· Experience on Apache Kafka and Confluent Kafka.
· Experience designing and optimizing data lakes using Apache Iceberg, including compaction and Iceberg optimization techniques.
· Hands-on experience integrating and optimizing Starburst/Trino, including connecting Starburst from Lambda and Glue ETL jobs.
· Experience with NoSQL databases such as DynamoDB, MongoDB.
· Experience working with data formats including Avro, Parquet, JSON, XML, and CSV.
· Comfortable challenging your peers and leadership team.
· Can prove yourself quickly and decisively.
· Excellent communication skills and Good Customer Centricity
Design and optimize data lakes using Apache Iceberg on AWS, including table compaction and Iceberg performance tuning.
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