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Engineer - Data Engineering & Analytics

Millennium IT ESP · Remote — Sri Lanka

Télétravail
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Résumé du poste

Lieu
Remote — Sri Lanka
Mode de travail
Télétravail
Type de contrat
Temps plein
Niveau d'expérience
Intermédiaire
Date de publication
10 oct. 2026
Dernière vérification à la source
11 oct. 2026
Source de l'offre
via Himalayas

Compétences

Visa et relocalisation

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L'annonce ne mentionne pas de relocalisation.

Description du poste

Job Description • Implement real-time ETL/ELT pipelines on enterprise data platforms, including Databricks, Snowflake, Microsoft Fabric, Cloudera, Informatica IDMC, or Oracle • Implement data workflows using technologies such as Databricks Lakeflow, Fabric Data Factory, Azure Data Factory, Informatica Cloud Data Integration, Snowflake Streams & Tasks, and Apache Airflow • Implement Change Data Capture (CDC) and streaming ingestion using one or more technologies, including Oracle GoldenGate, Apache Kafka, and Spark Structured Streaming • Apply dimensional data modelling, including Kimball star schemas, to deliver analytics-ready data marts • Implement data governance, security, data quality, and lineage using Databricks Unity Catalog, Microsoft Purview, Cloudera SDX, and Informatica Data Quality • Apply DataOps practices, including Git-based version control, CI/CD for data pipelines, automated testing, and Infrastructure as Code • Monitor, troubleshoot, and optimise production pipelines for performance and cloud cost efficiency, supporting the practice's 99.90% uptime SLA commitment • Work directly with client stakeholders throughout the delivery lifecycle, including requirements gathering, data model validation, User Acceptance Testing (UAT), Go-Live, and post-Go-Live SLA support Person Specification • Possess a Bachelor's Degree in Data Science or a higher qualification, such as an MSc in Data Science, Data Engineering, or Artificial Intelligence, from a recognised university • Have 2–3 years of professional experience in building and operating enterprise data pipelines, data warehouses, or lakehouses • Possess hands-on experience with at least two of the following platforms: Databricks, Snowflake, Microsoft Fabric/Azure Data Services, Cloudera, Informatica (IDMC/PowerCenter), or Oracle (ADW/Exadata/ODI) • Demonstrate strong experience with Apache Spark and distributed data processing at scale • Possess a solid understanding of data modelling, data quality, and data governance principles • Demonstrate strong communication skills and the ability to work directly with client stakeholders • Professional certifications such as Databricks Certified Data Engineer (Associate/Professional), SnowPro Core or SnowPro Advanced: Data Engineer, Microsoft Certified: Fabric Data Engineer Associate (DP-700) or Fabric Analytics Engineer Associate (DP-600), Informatica IDMC, or Oracle Autonomous Database certifications will be considered an added advantage • Experience in migrating legacy ETL platforms, including Informatica PowerCenter, SSIS, or ODI, or on-premises data warehouses to modern cloud lakehouse platforms will be considered an added advantage • Strong SQL and Python (PySpark) skills, along with knowledge of Scala or Java, will be considered an added advantage Originally posted on Himalayas Data-Engineer, Data-Engineering-Analyst, Analytics-Engineer, ETL-Developer, Data-Warehouse-Engineer, Data-Engineering-and-Analytics, Data-Analytics-Engineering, Analytics-Data-Engineering, Data-and-Analytics:-Data-Engineering, Data-Engineering
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