AI Engineer
IQVIAAbout the role
Role Summary
We are seeking a highly skilled Senior Consultant - AI Engineer to design, develop, and deploy scalable AI-powered solutions that address complex commercial, medical, and patient-centric challenges in the Healthcare and Life Sciences industry. This role combines advanced AI engineering, machine learning, Generative AI, Agentic AI, and healthcare analytics expertise to create innovative, production-grade solutions that drive measurable business value.
The ideal candidate will have strong experience in building enterprise AI applications, LLM-based solutions, intelligent agents, and modern analytics platforms while working with healthcare datasets such as claims, prescription, EMR/EHR, real-world data (RWD), CRM, patient support, clinical, and scientific data.
This individual will partner closely with business stakeholders, methodologists, data scientists, and technology teams to translate business problems into scalable AI solutions, reusable accelerators, and intellectual property.
Key Responsibilities
AI Solution Development & Engineering
Design, build, deploy, and maintain production-grade AI and machine learning solutions across commercial, medical, and patient analytics use cases.
Develop enterprise-scale Generative AI and Agentic AI applications leveraging Large Language Models (LLMs).
Build Retrieval-Augmented Generation (RAG) architectures, semantic search systems, knowledge agents, and intelligent workflow automation solutions.
Create reusable AI frameworks, APIs, accelerators, and platform components that can be deployed across multiple clients and therapeutic areas.
Develop scalable AI orchestration frameworks using agent-based architectures and workflow management tools.
AI Platform & MLOps Engineering
Develop cloud-native AI solutions using modern AI development platforms and frameworks.
Implement software engineering best practices including CI/CD, version control, automated testing, observability, and monitoring.
Establish AI deployment pipelines for model operationalization, monitoring, governance, and performance optimization.
Ensure scalability, security, reliability, and compliance of AI solutions in regulated healthcare environments.
Collaborate with data engineering teams to build robust data pipelines and AI-ready data ecosystems.
Generative AI & Agentic AI
Design and implement:
Large Language Model (LLM) applications
Retrieval-Augmented Generation (RAG) systems
Semantic search solutions
Prompt engineering frameworks
AI agents and multi-agent systems
Workflow orchestration platforms
Evaluate, validate, and benchmark AI models to ensure accuracy, reliability, explainability, and business relevance.
Contribute to AI governance, Responsible AI practices, and model risk management frameworks.
Healthcare Analytics & Business Impact
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