Data Engineer (Hyderabad)

Data Engineer (Hyderabad)

26 Aug
|
Globant
|
Hyderabad

26 Aug

Globant

Hyderabad

Key Responsibilities Fabrics Implementation: Work on the fabrics platform to design and implement robust data solutions, including One Lake architecture for efficient data storage and processing. Build & optimize data pipelines: Design, develop, and maintain scalable ingestion and transformation pipelines using Microsoft Fabric (Data Factory in Fabric / Pipelines), ADF/Synapse Pipelines, OneLake storage patterns, PySpark, Python, and SQL across structured and unstructured data. API-driven and scheduled workflows: Develop pipelines that ingest data from external APIs on a scheduled basis and initiate end-to-end downstream processing, supporting one or multiple daily runs through to curated and consumption-ready layers. Data ingestion & integration: Integrate data from cloud and on-prem sources including databases, third-party systems, files, and REST/SOAP APIs (auth, throttling, pagination, retries, and error handling). Transformation & data modeling: Build curated layers and consumption-ready models; implement incremental and batch processing logic; apply data modeling and transformation best practices aligned to reporting/analytics needs. SQL development & tuning: Develop and optimize complex queries, stored procedures, views, and datasets for effective analytics and reporting; partner with analytics teams to meet performance SLAs. Performance tuning & cost optimization: Tune Spark jobs, ADF data flows and SQL workloads (partitioning, caching, parallelism, cluster sizing/configs) to improve reliability and reduce runtime/cost.



Business logic implementation: Translate requirements into scalable rules (validation, eligibility, availability calculations), manage exceptions, audit logging, and ensure data consistency across systems. Data quality & validation: Implement automated data quality checks, validation frameworks, reconciliations, and monitoring to ensure trusted datasets. Security & compliance: Implement secure access via Azure AD, Managed Identities, RBAC, least privilege, and secure connectivity to data lake, Fabric/Synapse, and APIs. Automation & CI/CD: Build deployment automation using Azure DevOps/Git, promoting code across environments with consistent release practices; support testing and release activities. Monitoring & troubleshooting: Monitor pipelines and jobs using Spark UI and Azure Log Analytics; triage failures, perform root-cause analysis, and improve resiliency/runbooks. Collaboration: Work closely with architects, platform/DevOps engineers, analysts, and data scientists; participate in design sessions and code reviews; operate within Agile/Scrum delivery. Tools & Technologies Fabric: Microsoft Fabric Workspaces, OneLake, Fabric Pipelines / Data Factory in Fabric, Lakehouse/Warehouse (as applicable) Azure: ADLS Gen2, Blob Storage, Synapse Analytics, App Service (as needed), Azure Databricks Languages: PySpark, Python, SQL (T-SQL) DevOps: Azure DevOps, Git, Terraform (preferred) Monitoring: Spark UI, Azure Log Analytics Data Governance: Azure purview AI Tools: Co-pilot, Claude

📌 Data Engineer (Hyderabad)
🏢 Globant
📍 Hyderabad

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