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Rate: up to 170 pln/h on b2b
Location: 100% remotely
Summary: As a Data Integration Engineer, your primary objective is to design, build, and operate robust data integration solutions within an agile, DevOps-focused team operating in Azure Cloud. This role emphasizes creating seamless connections among various applications, services, and data streams, ultimately supporting data-driven decision-making.
Main Responsibilities:
Build and operate integration solutions using Azure services and messaging technologies.
Design and maintain workflows with DAG-based orchestration frameworks (e.g., Argo Workflows).
Develop data pipelines connecting various data sources through Azure Data Factory and Databricks.
Write efficient SQL for data extraction, validation, and transformation.
Collaborate with cross-functional teams to translate integration needs into technical solutions.
Advise on integration patterns and architecture in clear, digestible terms for non-technical stakeholders.
Engage in DevOps practices, including automated deployments and infrastructure-as-code.
Contribute actively within an agile Scrum team environment.
Key Requirements:
Solid background in Azure Cloud, especially in integration, messaging, and data workloads.
Hands-on experience with Azure Data Factory for source connectivity and pipeline orchestration, and with Databricks (PySpark, Delta Lake) for data transformation and enrichment.
Strong SQL skills and solid database know-how; experience working with enterprise systems and databases such as SAP and DB2 is a plus.
Experience with workflow orchestration systems (e.g., Argo Workflows, Temporal, Airflow) and DAG-based integration patterns.
Good understanding of API concepts (e.g. REST) and experience consuming APIs as a data source.
Experience with Kubernetes (AKS preferred), containerized applications, and cloud-native architecture.
Experience with integration & messaging technologies such as Azure Service Bus, Kafka, Event Hub, or similar.
Strong knowledge of Python for scripting, data pipeline development, and automation; basic understanding of Java for working with existing components.
Familiarity with DevOps practices and toolchains (CI/CD, IaC, monitoring, GitOps, etc.).
Ability to communicate technical topics clearly to stakeholders at different levels.
A consultative mindset and team-player attitude.
Nice to Have:
Experience in data-heavy sectors like finance or logistics.
Experience with both SQL and NoSQL databases.
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