Padmi

Data Engineer - AWS + Python

MumbaiPosted 1 month ago
Infrastructure And DatabasesMid-levelFull Time; Regular
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Key responsibilities include: Work closely with Product Owners and AWS Professional Service Architects to understand requirements, formulate solutions, and implement them.Implement scalable data transformation pipelines as per design - Implement Data model and Data Architecture as per laid out design.Evaluate new capabilities of AWS analytics services, develop prototypes, and assist in drawing POVs, participate in design discussionsRequirements: Minimum 3 years experience implementing transformation and loading of data from a wide variety of traditional and non-traditional sources such as structured, unstructured, and semi structured using SQL, NoSQL and data pipelines for real-time, streaming, batch and on-demand workloadsAt least 2 years implementing solutions using AWS services such as Lambda, AWS Athena and Glue AWS S3, Redshift, Kinesis, Lambda, Apache Spark,Experience working with data warehousing data lakes or Lakehouse concepts on AWSExperience implementing batch processing using AWS Glue/Lake formation, & Data PipelineExperience in EMR/MSKExperience or Exposure to AWS Dynamo DB will be a plusDevelop object-oriented code using Python, besides PySpark, SQL and one other languages (Java or Scala would be preferred)Experience on Streaming technologies both OnPrem/Cloud such as consuming and producing from Kafka, KinesisExperience building pipelines and orchestration of workflows in an enterprise environment using Apache Airflow/Control MExperience implementing Redshift on AWS or any one of Databricks on AWS, or Snowflake on AWSGood understanding of Dimensional Data Modelling will be a plus.Ability to multi-task and prioritize deadlines as needed to deliver resultsAbility to work independently or as part of a teamExcellent verbal and written communication skills with great attention to detail and accuracyExperience working in an Agile/Scrum environment Key responsibilities include: Work closely with Product Owners and AWS Professional Service Architects to understand requirements, formulate solutions, and implement them.Implement scalable data transformation pipelines as per design - Implement Data model and Data Architecture as per laid out design.Evaluate new capabilities of AWS analytics services, develop prototypes, and assist in drawing POVs, participate in design discussionsRequirements: Minimum 3 years experience implementing transformation and loading of data from a wide variety of traditional and non-traditional sources such as structured, unstructured, and semi structured using SQL, NoSQL and data pipelines for real-time, streaming, batch and on-demand workloadsAt least 2 years implementing solutions using AWS services such as Lambda, AWS Athena and Glue AWS S3, Redshift, Kinesis, Lambda, Apache Spark,Experience working with data warehousing data lakes or Lakehouse concepts on AWSExperience implementing batch processing using AWS Glue/Lake formation, & Data PipelineExperience in EMR/MSKExperience or Exposure to AWS Dynamo DB will be a plusDevelop object-oriented code using Python, besides PySpark, SQL and one other languages (Java or Scala would be preferred)Experience on Streaming technologies both OnPrem/Cloud such as consuming and producing from Kafka, KinesisExperience building pipelines and orchestration of workflows in an enterprise environment using Apache Airflow/Control MExperience implementing Redshift on AWS or any one of Databricks on AWS, or Snowflake on AWSGood understanding of Dimensional Data Modelling will be a plus.Ability to multi-task and prioritize deadlines as needed to deliver resultsAbility to work independently or as part of a teamExcellent verbal and written communication skills with great attention to detail and accuracyExperience working in an Agile/Scrum environment

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