Associate Consultant, Generative AI

Charlotte

Friday, 29 May 2026

We are growing our Generative AI consulting practice and looking for motivated recent graduates to join as Gen. AI Consultants. You'll work at the intersection of cutting-edge AI and real business problems — helping clients across industries design, build, and deploy LLM-powered solutions that create tangible value. This is a hands-on technical role. You'll contribute to the full lifecycle of Gen. AI projects: from architecture and prototyping through to production deployment, evaluation, and iteration. We invest heavily in your development, and expect you to do the same. What You'll Do. You'll design and implement Gen. AI/ LLM solutions leveraging models such as Claude, GPT, Gemini, Llama, and Mistral — selecting the right approach (RAG, agents, fine-tuning, prompt engineering) for each client context. You'll support senior architects in designing scalable, secure, and compliant AI applications while building hands-on experience across the full stack. Responsibilities LLM/ Gen. AI System Development: Design, build, train, fine-tune, and deploy sophisticated AI models leveraging LL - Ms (e.g., GPT-x, Claude, Gemini, Llama, Mistral) and other generative techniques. Assist in Solution Architecture: Support the Gen. AI Solution Architect in designing robust, scalable, and secure applications. Application Development: Develop applications powered by Gen. AI models (both self-managed and API-accessible) that meet business needs and comply with applicable regulations (GDPR, EU AI Act, model licenses, etc.). Advanced Prompt Engineering: Design and optimize effective prompts (e.g., few-shot, Chain/ Tree/ Graph of Thought, Re. Act, Self-reflection, guardrails), balancing simplicity and complexity to enhance analytical capabilities, refine outputs, improve user experience, and control interactions. RAG Implementation: Design and implement Retrieval-Augmented Generation (RAG) architectures to improve accuracy and relevance by retrieving information from pre-determined knowledge sources, providing traceability (source attribution). Model Selection & Fine-Tuning: Select and fine-tune appropriate models (including multimodal - VLM, SLM - Visual Language Models, Small Language Models) to create higher-quality content (text, image, audio, code, etc.) and maximize business value creation opportunities. Integration & Deployment (ML - Ops): Implement ML - Ops best practices for the Gen. AI lifecycle, including automated pipelines (CI/ CD), versioning, monitoring, and maintenance in production environments (Cloud platforms like AWS, Azure, GCP). Ensure seamless integration into existing systems and with external tools/ APIs, potentially utilizing standardized protocols (MCP). Evaluation & Responsible AI: Develop and execute rigorous evaluation frameworks to measure model performance, reliability, fairness, and safety. Ensure adherence to Responsible AI principles and help teams and clients navigate end-to-end security and compliance processes. Research & Innovation: Stay abreast of the latest advancements in Gen. AI techniques, technologies, and frameworks. Experiment with new approaches and contribute to internal knowledge sharing. Collaboration: Work effectively within cross-functional teams, communicating complex technical concepts clearly to diverse stakeholders (both technical and non-technical). Documentation: Document processes, methodologies, and best practices for knowledge sharing and future reference. Use Case Differentiation: Distinguish between use cases suited for Generative AI versus traditional NLP applications (e.g., NER, sentiment analysis). Qualifications. Bachelors Degree Required. Recent graduate (within 2 years) in CS, Engineering, Data Science, or equivalent. Strong Python programming skills. Familiarity with at least one Gen. AI framework (Lang. Chain, Llama. Index, or similar)Foundational knowledge of NLP concepts, vector embeddings, and semantic search. Exposure to cloud platforms (AWS, Azure, or GCP)Ability to explain technical concepts clearly to diverse audiences. Claude Certified Architect (CCA) Requirement. All candidates must hold — or demonstrate the clear ability to obtain within one week of hire — the Claude Certified Architect – Foundations (CCA-F) certification from Anthropic. Preferred Qualifications. Masters Degree Preferred. Prior experience building agentic AI systems (Lang. Graph, Auto. Gen, etc)Familiarity with vector databases (Pinecone, Chroma, pgvector, Open. Search)Experience with or understanding of the Model Context Protocol (MCP)Hands-on fine-tuning experience with open-source LL - Ms. Familiarity with Docker, Git, and CI/ CD workflows

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