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About the Role
We are seeking a skilled Data Engineer with 5–7 years of experience to design, build, and maintain scalable data pipelines and data warehouse solutions on AWS, with a strong focus on Amazon Redshift. The role requires hands-on expertise in SQL and Python, exposure to Snowflake, and the ability to work across multiple business domains.
The candidate will collaborate closely with data architects, analysts, and business stakeholders to deliver reliable, high-performance data solutions that support analytics and reporting needs.
Key Responsibilities
Required Skills & Experience
Good to Have
Job ID: 151344901
Skills:
Power Bi, Power Query, Azure Sql, Sql, ELT, Azure Data Factory, Azure Data Lake, Dax, Python, Etl, Synapse, Microsoft Fabric
Skills:
Unix, BigQuery, PostgreSQL, Apache Spark, ELT, Apache Airflow, Cloud Storage, Git, Docker, Linux, MySQL, MongoDB, DataFlow, Kubernetes, Python, Etl, Cloud Pub Sub, GCP services
Skills:
Sql, Git, Python, NoSQL document databases Firestore DB, Chunking and embedding techniques for LLM RAG workflows, Google BigQuery, Cloud Composer Apache Airflow pipeline orchestration, Gen AI development using OpenAI APIs, Docker containerization, Google Cloud Storage, PostgreSQL including pgvector for vector search, Google Cloud Platform hands-on
Skills:
Data Modeling, Sql, Spark, Data Integration, Python, data pipeline development, OneLake, schema management, data quality frameworks, Reconciliation, incremental processing, Pipelines, Notebooks, performance optimization, partitioning, Lakehouse architecture, Microsoft Fabric, Azure data services, Validation
Skills:
data engineering , snowflake , Data Modeling, Digital Transformation, Gcp, Databricks, Data Governance, Azure, AWS, Generative AI, Reltio MDM, Ai, Veeva Vault, Managed Services, Informatica MDM IDMC, Cloud Data Platforms