Artificial Intelligence (AI) & Machine Learning Engineer

🏢 JAHEZIYA
📍 Abu Dhabi, United Arab EmiratesFull-timeOn-site
📅 Posted: Yesterday🔄 Updated: Yesterday
CV%
✨ AI Summary
JAHEZIYA is seeking an Artificial Intelligence (AI) & Machine Learning Engineer to design, deploy, and maintain scalable AI and machine learning systems. The role involves ensuring efficient model serving, deployment, monitoring, and operational excellence across AI environments. Key responsibilities include developing MLOps pipelines, ensuring AI platform performance and security, deploying and optimizing models, and managing containerized applications. The engineer will collaborate with cross-functional teams to operationalize AI solutions and troubleshoot production issues. Candidates must hold a Bachelor's degree in a relevant field and possess 3-8 years of experience in AI systems engineering, MLOps, or ML platform engineering. Proficiency in Python, cloud platforms (Azure, AWS, GCP), Docker, Kubernetes, and CI/CD pipelines is essential. Experience with distributed systems and operationalizing AI solutions is also required.
Required Skills
Information Technology
Infrastructure as CodeMonitoringObservability
Business, Sales & Management
HR Management
Requirements
Requires a Bachelor's degree in Computer Science, Artificial Intelligence, Data Science, Software Engineering, or a related field, with 3-8 years of experience in AI systems engineering, MLOps, or machine learning platform engineering. Must have strong Python programming skills and experience with cloud platforms (Azure, AWS, GCP), Docker, Kubernetes, CI/CD pipelines, distributed systems, and operationalizing ML/generative AI solutions.
Description
About The RoleDesign, deploy, and maintain scalable AI and machine learning systems that deliver secure, reliable, and high-performing AI solutions. Ensure efficient model serving, deployment, monitoring, and operational excellence across AI environments.Key Responsibilities Design, deploy, and maintain scalable AI/ML systems and infrastructure. Develop and manage MLOps pipelines for automated model deployment and monitoring. Ensure the performance, reliability, security, and scalability of AI platforms. Deploy, serve, and optimize machine learning and generative AI models for production environments. Build and maintain CI/CD pipelines for AI applications. Manage containerized AI applications using Docker and Kubernetes. Collaborate with data scientists, software engineers, and business stakeholders to operationalize AI solutions. Monitor AI system performance, reliability, and availability, implementing continuous improvements. Troubleshoot production issues and optimize AI infrastructure.Requirements Bachelor's degree in Computer Science, Artificial Intelligence, Data Science, Software Engineering, or a related field. 3–8 years of experience in AI systems engineering, MLOps, or machine learning platform engineering. Strong programming skills in Python. Experience with cloud platforms such as Microsoft Azure, AWS, or Google Cloud Platform. Hands-on experience with Docker, Kubernetes, and containerized deployments. Experience designing and maintaining CI/CD pipelines. Knowledge of distributed systems and scalable AI infrastructure. Experience deploying and operationalizing machine learning and generative AI solutions.Preferred Qualifications Experience with Azure Machine Learning, AWS SageMaker, or Google Vertex AI. Experience with Infrastructure as Code (Terraform or similar). Familiarity with AI monitoring, observability, and model lifecycle management. Relevant cloud or AI certifications.
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🎯 Overalli74%
⚡ Skillsi85%
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Ontology Match: 85.0
Matched:✓ Requirements Matching✓ Ontology Skills Mapping
📜 Eligibilityi49%
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Local: 19600%
🏗️ Career Fiti91%
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Seniority: 91.0
📋 Requirementsi67%
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Domain: 67.0
🔥 Motivationi78%
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Title Fit: 78.00