We are looking for a skilled Data Engineer with around 2-4 years of experience to join our data engineering team. The ideal candidate should have strong hands-on experience in Snowflake, SQL, Python, PySpark, Spark Architecture and along with a solid understanding of data modeling and ETL pipeline development.
The candidate will be responsible for designing, developing, and maintaining scalable data pipelines, transforming and processing large datasets, and implementing data solutions using Snowflake and distributed data processing technologies. This role requires strong problem-solving skills and the ability to work effectively with cross-functional teams.
Key Responsibilities:
Design, develop, and maintain scalable ETL/ELT data pipelines for processing and integrating data from multiple sources.
Develop efficient and optimized SQL queries for data extraction, transformation, and analysis.
Build and maintain data processing solutions using Python, PySpark/Snowpark.
Develop and manage data solutions on Snowflake, including data loading, transformation, and data processing.
Design and implement effective data models to support analytical and reporting requirements.
Perform data transformation, cleansing, validation, and quality checks to ensure data accuracy and consistency.
Optimize SQL queries, Spark jobs, and data pipelines for performance and scalability. Troubleshoot and resolve issues related to data pipelines, transformations, and data processing.
Collaborate with business analysts, developers, and other stakeholders to understand data requirements and deliver reliable data solutions.
Follow engineering best practices for code quality, version control, testing, documentation, and deployment.
Qualifications:
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