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About the Role
We are looking for a motivated Data Engineer to join our Data Management and AI team and contribute to building scalable data platforms that power analytics and AI initiatives across our digital banking ecosystem.
In this role, you will design and develop data pipelines, streaming infrastructure, and data warehouse solutions that enable reliable and high-performance data processing.
This is an excellent opportunity for a junior data engineer looking to grow within a fast-paced fintech environment while working on modern data technologies.
Team Overview
The Data Management and AI team works across the entire technology stack within QNBeyond Plus.
Our team collaborates with engineering, analytics, and product teams to manage, process, and analyze data that enables innovative digital banking experiences for our customers.
Key Responsibilities
Data Pipeline Development
Streaming & Event Processing
Data Transformation
Data Warehouse Development
Data Quality & Reliability
Collaboration
What We Are Looking For
You must be:
Required Qualifications
Education
Technical Knowledge
Systems Skills
Data Engineering Skills
Data & Analytics
Programming
Experience
Job ID: 153621753
Skills:
Pyspark, Apache Spark, Data Governance, Sql, Data Integration, ELT, Netsuite, Rest Apis, Oracle Ebs, Python, Etl, Azure DevOps, Azure ecosystem, Big Data Processing, Data Pipelines, Lakehouse Architecture, Google BigQuery, CI/CD pipelines, Microsoft Fabric, Fusion, Metadata-driven data pipelines
Skills:
Data Modeling, Azure, Apis, cloud data services, data quality principles, system integrations, data pipeline development, ETL tooling, iPaaS platforms, event-driven patterns
Skills:
Gcp, Apache Spark, Databricks, Tableau, Python, Sql, AWS, Airflow, Bitbucket Pipelines, dbt
Skills:
Power Bi, Data Warehousing, Qlikview, Tableau, Data Modeling, Azure, Python, Sql, AWS, ETL processes
Skills:
data engineering , Metadata Management, Azure Data Factory, Data Integration, Pyspark, Data Profiling, Etl Development, Azure Synapse Analytics, Python, Sql, Data quality frameworks