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AI / Machine Learning Engineer

Yochana

Saint George's · On-site Full-time 2w ago

About the role

Job Summary

We are looking for an experienced AI / Machine Learning Engineer with strong expertise in building and deploying AI solutions in production environments. The ideal candidate should have hands-on experience with Computational Knowledge Graphs, strong mathematical foundations, and practical exposure to machine learning, optimization techniques, and scalable system design. Experience working with Oil & Gas domain data and business processes is highly preferred.

Key Responsibilities

  • Design, develop, deploy, and maintain AI/ML applications for production-scale environments.
  • Build and optimize Computational Knowledge Graph solutions for intelligent data modeling and decision support.
  • Develop machine learning models for prediction, classification, optimization, and analytics use cases.
  • Implement scalable AI architectures and integrate them with enterprise platforms.
  • Work with structured and unstructured datasets to derive business insights.
  • Design and optimize algorithms using mathematical and statistical techniques.
  • Develop APIs and backend services for AI model integration.
  • Collaborate with cross-functional teams including data engineers, software developers, and business stakeholders.
  • Apply AI solutions to solve business problems in the Oil & Gas domain.
  • Monitor model performance and continuously improve system reliability and efficiency.
  • Follow MLOps and software engineering best practices for deployment and lifecycle management.

Required Skills & Qualifications

Technical Skills

  • Strong proficiency in Python (mandatory)
  • Good programming knowledge in Java, C++, TypeScript/JavaScript
  • Strong mathematical foundations including:
    • Linear Algebra
    • Probability & Statistics
    • Optimization Techniques
    • Calculus (preferred)
  • Solid understanding of:
    • Machine Learning algorithms
    • Deep Learning concepts
    • Feature Engineering
    • Model Evaluation & Optimization
    • System Design principles
  • Experience with Computational Knowledge Graphs / Graph-based AI systems
  • Exposure to AI deployment and production-grade ML systems
  • Experience with cloud platforms and scalable architecture is preferred
  • Understanding of MLOps concepts and model lifecycle management

Skills

C++Computational Knowledge GraphsDeep LearningJavaJavaScriptMachine LearningMLOpsOptimization TechniquesProbabilityPythonStatisticsSystem DesignTypeScript

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