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IBS Software

Data Engineer

Posted 4 Days Ago
In-Office or Remote
Hiring Remotely in India
Entry level
In-Office or Remote
Hiring Remotely in India
Entry level
Designs, builds, and maintains scalable ETL pipelines and data products across multi-cloud, multi-region environments. Investigates and resolves technical, procedural, and operational data issues while applying disciplined development practices. The role requires expertise in data engineering patterns, architecture, big data, programming, warehousing, orchestration, databases, data modeling, streaming, security, version control, containerization, monitoring, and logging.
The summary above was generated by AI

What you’ll do:
•         Design, build and maintain data processing ETL pipelines & data products in a multi-cloud, multi-region, distributed processing context choosing the right technologies.
•         Drive data investigations to deliver a resolution of technical, procedural, and operational issues.
•         Solve complex business problems by utilizing disciplined development methodology, producing scalable, flexible, efficient and supportable solutions using appropriate technologies.
Skills:
Data engineering patterns: Sound knowledge of the different data engineering patterns to determine what to use and when
Data architecture: Understanding of data architecture and frameworks like Data mesh, data fabric etc.
Big Data Technologies: Proficiency in big data technologies such as data lake, EMR, Glue for analysing large datasets. 
Programming Languages: Proficiency in programming languages commonly used in data engineering, such as Python, Java, or Scala. with OOP expertise
Data Warehousing: Strong knowledge of data warehousing solutions preferably Amazon Snowflake.
ETL/ELT Tools: Familiarity with orchestration tools
Database Systems: Expertise in both relational and NoSQL databases.
Data Modelling: Skill in designing efficient data models, both for OLAP and OLTP systems.
Streaming Data: Knowledge of streaming data technologies.
Version Control: Experience with version control systems : Git.
Containerization and Orchestration: Understanding of containerization technologies (Docker) and container orchestration platforms (Kubernetes).
Data Security: Knowledge of data encryption, access control, and compliance with data privacy regulations.
Monitoring and Logging: Proficiency in setting up monitoring and logging solutions for data pipelines using different tools
 

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