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In-depth knowledge of AWS services related to data engineering: EC2, S3, RDS, DynamoDB, Redshift, Glue, Lambda, Step Functions, Kinesis, Iceberg, EMR, and Athena.
Strong understanding of cloud architecture and best practices for high availability and fault tolerance.
Expertise in ETL/ELT processes, data modeling, and data warehousing.
Knowledge of data lakes, data warehouses, and big data processing frameworks like Apache Hadoop and Spark.
Proficiency in handling structured and unstructured data.
Proficiency in Python, Pyspark and SQLfor data manipulation and pipeline development.
Expertise in working with data warehousing solutions like Redshift.