Lead AI Engineer
intelmatix
Date: 2 weeks ago
City: Riyadh
Contract type: Full time
Position Overview
We are seeking a technically strong and solution-oriented Lead Applied AI Engineer to support the
design and implementation of advanced AI and analytics solutions. This role is ideal for someone
with 6+ years of experience in data science and applied machine learning who enjoys combining
technical depth with real-world problem-solving.
You will work closely with internal technical teams and external clients to translate business needs
into scalable AI solutions. You’ll also guide junior team members, contribute to hands-on model
development, and ensure seamless delivery of analytical components into production environments.
Key Responsibilities
Agentic AI, LLMs & Modern AI Systems
We are seeking a technically strong and solution-oriented Lead Applied AI Engineer to support the
design and implementation of advanced AI and analytics solutions. This role is ideal for someone
with 6+ years of experience in data science and applied machine learning who enjoys combining
technical depth with real-world problem-solving.
You will work closely with internal technical teams and external clients to translate business needs
into scalable AI solutions. You’ll also guide junior team members, contribute to hands-on model
development, and ensure seamless delivery of analytical components into production environments.
Key Responsibilities
Agentic AI, LLMs & Modern AI Systems
- Architect and implement production-grade agentic AI systems using LLM orchestration frameworks and protocols (e.g., LangChain, LangGraph, Langfuse, MCP).
- Design and deploy Retrieval-Augmented Generation (RAG) pipelines — including chunking strategies, vector store selection, hybrid retrieval, and evaluation.
- Build multi-agent systems with tool use, memory, planning, and inter-agent coordination for enterprise automation and decision-support.
- Evaluate and integrate frontier LLMs (OpenAI, Anthropic, Mistral, open-source) into secure, scalable production architectures, on cloud and on-prem.
- Stay at the forefront of emerging agentic AI research and translate findings into practical product capabilities.
- Design and implement end-to-end ML pipelines: data ingestion, feature engineering, model training, hyper parameter tuning, validation, and deployment.
- Apply classical ML techniques across regression, classification, clustering, time-series forecasting, anomaly detection, and optimization.
- Deliver rigorous data analysis and statistical modeling to generate actionable insights for clients.
- Ensure models are production-ready: robust, interpretable, monitored, and aligned with business KPIs.
- Lead, mentor, and coach junior data and AI scientists — guiding their technical growth, reviewing their code, and building their problem-solving capabilities.
- Define and enforce technical standards, best practices, and review processes across the data science team.
- Drive knowledge-sharing through internal presentations, documentation, and technical sessions.
- Collaborate with client engagement and technical teams to understand business requirements and translate them into actionable AI/analytics solutions.
- Provide strategic input on solution design, aligning analytical capabilities with client objectives.
- Serve as a technical lead in solution delivery discussions and workshops with clients.
- Collaborate with engineering teams to ensure seamless deployment of models into production via APIs, containerization (Docker/Kubernetes), and CI/CD pipelines.
- Implement model monitoring, drift detection, and retraining workflows to maintain solution performance post-deployment.
- Champion clean, maintainable, well-documented code practices across the team.
- Languages & Libraries: Python (primary), SQL, NumPy, pandas, scikit-learn, XGBoost, LightGBM
- Agentic & LLM Frameworks: LangChain, LangGraph, Model Context Protocol (MCP), OpenAI API, Anthropic API
- RAG & Vector Stores: FAISS, Pinecone; embedding models and evaluation frameworks
- Deep Learning: PyTorch, TensorFlow/Keras, Hugging Face Transformers
- Cloud: one or more of: AWS, GCP, Azure
- Databases: PostgreSQL, Oracle; vector databases
- MLOps: Docker, MLflow, CI/CD pipelines
- Bachelor’s or Master’s degree in Computer Science, Engineering, or a related field.
- 6–8+ years of hands-on experience in data science, applied machine learning, and AI engineering.
- Demonstrable production experience with LLMs, RAG pipelines, and agentic AI systems.
- Strong classical ML and statistical modeling expertise across multiple problem types and domains.
- Demonstrated ability to lead technical work and mentor junior team members.
- Ability to balance technical depth with practical delivery and business impact.
- Excellent collaboration and communication skills to work across teams and with clients.
- Fluency in English (written and spoken). Arabic
- Experience delivering AI solutions across multiple industry sectors (e.g., government, energy, finance, healthcare, or retail).
- Client-facing or consulting experience — working directly with external stakeholders on solution design and delivery.
- Experience with on-premise LLM deployment and air-gapped AI environments.
- Familiarity with Arabic NLP and multilingual models.
- Background in decision intelligence, operations research, or simulation modeling.
- Publications, open-source contributions, or public technical presence.
- Equity ownership in a pioneering deep-tech company.
- Comprehensive medical insurance for employees and dependents.
- Children’s school allowance and relocation support, as applicable.
- Collaborative, mission-driven work culture with opportunities for professional growth.
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