SR. DIGITAL ARCHITECT

QatarEnergy

Doha

On-site

QAR 300,000 - 420,000

Full time

14 days+
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Job summary

QatarEnergy seeks a Senior Digital Architect to design, implement, and maintain cloud-native AI/ML platforms across the organization. You will integrate AI/ML models into scalable analytics, collaborate with business teams, and drive digital transformation with emerging technologies.

The role requires deep experience in AI/ML frameworks, MLOps practices, and secure, scalable cloud architectures, with a focus on energy sector applications and governance considerations.

Qualifications

  • 8+ years in digital solution architecture with at least 5 years focused on AI/ML in Energy sector.
  • Proven track record of enterprise-scale AI/ML architecture/solutions.
  • 5+ years experience with AI/ML frameworks and AI model deployment.
  • Proficient in large language models and generative AI implementations.
  • Experience in prompt engineering, RAG, and fine‑tuning for performance.
  • Experience with real-time ML systems and edge computing.

Responsibilities

  • Design scalable, secure, cloud‑native architecture frameworks for AI/ML solutions including MLOps pipelines and deployment infrastructure.
  • Establish guidelines for generative AI implementations, including safety and ethics.
  • Package AI/ML models as production‑ready APIs or microservices.
  • Define standards for model deployment, monitoring, and maintenance.
  • Evaluate industry data/AI platforms and Auto‑ML tools for business value.
  • Partner with stakeholders to translate requirements into technical solutions.
  • Establish governance for AI model lifecycle management.
  • Assess security risks and mitigation strategies for digital solutions.
  • Audit AI tools and practices for continuous improvement.
  • Provide strategic guidance on cloud architecture and platform optimization.
  • Stay updated on emerging tech and cloud-native AI/ML solutions.

Skills

AI/ML Architecture
MLOps
DevOps
Cloud Architecture
Data Governance
AI Ethics
Stakeholder Communication

Education

Bachelor’s in Information Management or Engineering
Master’s/PhD in Data Science/CS/Statistics

Tools

TensorFlow
PyTorch
OpenShift
Docker
Kubernetes
AutoML tools

Job description

Primary Purpose Of The Job

The Senior Digital Architect is responsible for designing, implementing, and maintaining Cloud digital platforms across the organization. This role focuses on enhancing enterprise analytics capabilities by integrating AI/ML models, emerging technologies, and large-scale data processing frameworks to drive data‑driven decision‑making and operational efficiency. Additionally, the digital architect will collaborate with business and technical teams to accelerate digital transformation, streamline data governance, and adopt emerging technologies to drive continuous innovation.

Principle Accountabilities
  • Design scalable, secure, and cloud‑native architecture frameworks for AI/ML solutions, including MLOps pipelines, model deployment infrastructure, and integration patterns.
  • Establish architectural guidelines for implementing generative AI solutions, including safety measures and ethical considerations.
  • Design scalable architectures for packaging AI/ML models as production‑ready APIs or custom applications/microservices.
  • Define technical standards for model deployment, monitoring, and maintenance.
  • Identify and evaluate industry‑specific data and AI platforms, Auto‑ML tools to fit business use cases and derive value.
  • Partner with business stakeholders to understand requirements and translate them into technical solutions.
  • Establish governance frameworks for AI model lifecycle management.
  • Assess technical and Information security risks and provide mitigation strategies in the implementation of digital solutions.
  • Audit AI tools and practices across data, models and engineering, focusing on continuous improvement and feedback mechanisms.
  • Provide strategic and technical guidance to stakeholders regarding digital solutions, cloud architecture, and platform optimizations.
  • Stay updated on emerging technologies and apply cloud‑native, AI/ML‑driven solutions, automation tools to foster innovation in business processes.
Required Experience And Skills
AI/ML Expertise
  • 8+ years of experience in digital solution architecture, with at least 5 years focusing on AI/ML solutions preferably in the Energy Sector.
  • Proven track record of designing and implementing enterprise‑scale AI/ML architecture/solutions.
  • 5+ years of experience with AI/ML frameworks (TensorFlow, PyTorch, etc.) and AI model deployment.
  • Proficient in large language models and generative AI implementations.
  • Experience in prompt engineering, RAG, and fine‑tuning to optimize model performance and response accuracy.
  • Experienced with real‑time ML systems and edge computing.
MLOps and DataOps
  • Strong knowledge of MLOps practices and tools.
  • Proficiency in MLOps and DataOps methodologies, including CI/CD pipelines, ML model monitoring, and automation.
  • Experience with DevOps, serverless computing, and containerization (Docker, OpenShift, Kubernetes).
Cloud and Architecture
  • Strong expertise in one of the cloud computing platforms (Azure, GCP), cloud services (SaaS, PaaS, DaaS), and microservices‑driven architectures.
  • Experience in designing scalable architectures for packaging AI/ML models as production‑ready APIs or custom applications/microservices.
  • Working knowledge of system integration approaches, modern data architectures, and cloud‑native application design.
Governance and Compliance
  • In‑depth understanding of data governance frameworks, cybersecurity principles, regulatory compliance, and AI ethics in enterprise settings.
  • Knowledgeable in AI/ML regulatory compliance.
Communication and Collaboration

Excellent communication skills to effectively collaborate with business, technical, and product teams and translate complex technical requirements into actionable solutions.

Educational Qualifications
  • A degree in Information Management, Engineering, or a technology related field, demonstrating strong analytical and quantitative skills.
  • Advanced degrees (Master's or PhD) in Data Science, Applied Machine Learning, Computer Science, or Statistics are highly desirable.
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