Senior AI Engineer / AI Technical Lead at Green Com Enterprise Solutions Ltd

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Job Detail

  • Job ID 1021359
  • Experience  5 Years
  • Qualifications  Degree Bachelor

Job Description

Key Responsibilities

The successful candidate will:

  • Lead the technical establishment of Green Com’s AI capability.
  • Design and develop production-grade AI and machine-learning solutions.
  • Build applications using Large Language Models (LLMs), Retrieval-Augmented Generation (RAG), embeddings and vector databases.
  • Design AI solutions for document processing, knowledge management, analytics, workflow automation and enterprise systems.
  • Integrate AI capabilities with existing enterprise applications, APIs, databases and identity-management systems.
  • Design secure AI architectures for cloud, hybrid and on-premise environments.
  • Establish standards for AI security, model evaluation, testing, monitoring and responsible AI.
  • Evaluate commercial and open-source AI models and recommend appropriate technologies for different use cases.
  • Develop AI proof-of-concepts and convert successful prototypes into production solutions.
  • Mentor Green com software developers and help develop internal AI engineering capability.
  • Participate in technical presentations, demonstrations, proposals and AI consultancy engagements.
  • Contribute technical input to AI tenders and proposals.
  • Research emerging AI technologies and advise management on commercially relevant opportunities.

Technical Competencies

Candidates should demonstrate strong practical knowledge of:

  • Python and modern software-engineering practices
  • Machine learning and deep-learning fundamentals
  • Large Language Models
  • Retrieval-Augmented Generation (RAG)
  • Prompt and context engineering
  • Embeddings and vector search
  • AI agents and tool/function calling
  • Model and RAG evaluation
  • REST APIs and enterprise application integration
  • SQL and data engineering
  • Docker/containerization
  • Git and CI/CD
  • Cloud AI platforms, preferably Microsoft Azure
  • Authentication, authorization and enterprise security principles
  • AI privacy, security, guardrails and responsible AI
  • Classical machine-learning techniques (e.g. gradient boosting, classification/regression), not only deep learning and LLMs
  • Evaluation and observability tooling for AI systems (e.g. RAGAS, LangSmith, Azure AI Foundry evaluation)
  • Data engineering practices, including ETL/pipelines and data validation
  • AI-specific security practices, including prompt-injection defense, PII redaction, output filtering and audit logging
  • Experience with technologies such as Azure AI services, Azure OpenAI/OpenAI APIs, Hugging Face, PyTorch or TensorFlow, LangChain/LlamaIndex or equivalent frameworks, PostgreSQL/pgvector, Qdrant, Pinecone, Weaviate or similar technologies will be advantageous.
  • Candidates are not expected to have worked with every technology listed above. We are more interested in strong fundamentals, demonstrated engineering ability and the ability to select appropriate technologies for a problem.

Enterprise Experience

Experience in one or more of the following will be advantageous:

  • Government or public-sector systems
  • Enterprise ERP/workflow systems
  • Microsoft technology environments
  • Document and records-management systems
  • Business-process automation
  • Data analytics
  • Regulatory systems
  • Financial/payment systems
  • On-premise or hybrid enterprise deployments

Qualifications

  • Bachelor’s degree in Computer Science, Software Engineering, Data Science, Artificial Intelligence or a related technical field.
  • Strong professional software-development or data-engineering experience.
  • 5+ years of professional software-engineering experience, including demonstrable experience building AI/ML applications.
  • Experience mentoring or leading engineering teams, with the ability to guide technical direction and grow junior engineers.
  • Relevant Microsoft, Azure, AI or cloud certifications will be an added advantage but are not mandatory.

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