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Data and AI Engineering Expert

ENEC Operations

Abu Dhabi Emirate, United Arab EmiratesHybridFull-Time1w ago

Description

The Data and AI Engineering Expert is a senior hands-on technical authority responsible for the design, development, and operationalization of enterprise data and AI platforms across ENEC. This role leads the engineering delivery of scalable, secure, and compliant data pipelines, AI/ML solutions, and analytics platforms leveraging technologies such as Databricks (Delta Lake, Unity Catalog, MLflow, Delta Live Tables), Microsoft Azure (Azure Data Factory, Azure ML, Microsoft Fabric, Azure AI Foundry, Copilot Studio), Collibra (Data Governance & Data Quality), Power BI, and OT/industrial data systems including PI System, SCADA, and DCS.

The Expert applies deep engineering expertise to architect and deliver production-grade solutions, ensures data governance and quality standards are upheld, and drives the adoption of AI and analytics capabilities that directly support ENEC's mission of safe, innovative, and efficient nuclear energy generation. This role acts as a principal technical contributor and mentor, enabling operational excellence and digital transformation at scale.

Activity: Data Engineering Architecture & Platform Development

Responsibilities and Accountabilities:

• Design, build, and maintain scalable, secure, and high-performance data platforms including Lakehouse architectures using Databricks Delta Lake, Unity Catalog, and Delta Live Tables (DLT).

• Develop and operationalize robust data pipelines, ETL/ELT workflows, and integration frameworks using Azure Data Factory, Databricks Workflows, and related orchestration tools.

• Architect and implement data models, semantic layers, and data products that serve enterprise analytics, AI, and reporting needs.

• Ensure seamless integration of OT and industrial data sources — including PI System, SCADA, and DCS — into enterprise data platforms.

• Design and implement APIs, data contracts, and integration frameworks to enable enterprise-wide data consumption.

• Ensure platform scalability, resilience, high availability, and disaster recovery capabilities in compliance with nuclear and regulatory requirements.

• Apply and enforce data standards, naming conventions, and metadata management practices across all data assets using Collibra and Unity Catalog.

Responsibilities and Accountabilities:

• Design, develop, and deploy production-grade machine learning, deep learning, and generative AI models using Azure ML, MLflow, and Databricks ML.

• Engineer end-to-end MLOps pipelines covering model training, versioning, validation, deployment, monitoring, and retraining — ensuring reliability and reproducibility.

• Build and operationalize AI-powered solutions including predictive analytics, anomaly detection, natural language processing (NLP), and GenAI/LLM-based applications using Azure AI Foundry and Copilot Studio.

• Develop BI and semantic models in Microsoft Fabric and Power BI, enabling self-service analytics and executive reporting across the organization.

• Apply Responsible AI principles and governance frameworks to all AI and ML solutions, ensuring explainability, fairness, and compliance.

• Conduct rigorous model evaluation, performance benchmarking, and validation to ensure solutions meet accuracy, reliability, and safety standards.

• Contribute to the continuous improvement of AI engineering standards, patterns, and reusable components across the enterprise.

Activity: Advanced Subject Matter Knowledge

Responsibilities and Accountabilities:

• Demonstrates deep, hands-on expertise in enterprise data engineering, AI/ML platform development, and cloud-native architectures within highly regulated environments.

• Maintains current knowledge of global trends in data engineering, MLOps, GenAI, cloud technologies (Azure, hybrid, on-premise), and nuclear industry compliance requirements.

• Understands the fu

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