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The AI Engineer will design and implement hybrid models that combine first-principles (physics-based) modeling with deep learning, enabling process digital twins and AI agents for advanced simulation, optimization, and autonomous decision-making in industrial environments, mainly Oil & Gas Industry.
Key Responsibilities- Develop hybrid physics-informed (first principles) and data-driven (Neural Networks and others) models.
- Build and deploy deep learning models for industrial process applications.
- Implement and maintain process digital twins using real-time and historical data.
- Design AI agents that use digital twins for optimization and decision support.
- Integrate AI solutions with existing industrial and cloud systems.
- Ensure model robustness, validation, and lifecycle management.
- Engineering degree (Chemical, Systems, Electrical, Mechanical, or related).
- Strong expertise in deep learning and neural networks.
- Experience with first-principles / physics-based modeling.
- Advanced Python programming skills.
- Experience with process modeling or digital twins.
- Working knowledge of AI agents and autonomous systems.
- Industrial experience (energy, oil & gas, chemicals, manufacturing).
- Knowledge of optimization, control, or MPC (Multivariate Model Predictive Process Control)
- Experience with MLOps, Docker, and cloud platforms.
- Familiarity with multi-agent architectures.
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