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Paid Internship
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Required Degree
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24Open Positions

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AI & Agentic Platform Intern

Engelhart
Found 2 weeks ago
Location
London, United Kingdom
Time
Full-time
Work Mode
Hybrid
Salary
Not disclosed
Visa Help
Not disclosed
Last Verified
2 weeks ago

Education

  • Bachelor

Skills & Qualifications

Technical Skills

  • Python
  • AWS Lambda
  • MCP servers
  • Postgres with pgvector
  • AWS Bedrock Knowledge Bases
  • LangChain
  • LlamaIndex
  • n8n
  • Microsoft Copilot
  • Claude Code
  • AWS VPC
  • Docker

Soft Skills

  • technically minded
  • genuinely curious
  • comfortable navigating ambiguity
  • energised by fast-moving technology landscapes
  • take pride in writing clean, well-structured code
  • thrive in collaborative environments
  • motivated by the opportunity to contribute to something that has real, visible impact within a live business setting
  • proactive, self-directed learning style
  • Good communication skills
  • explain technical concepts clearly to both technical and non-technical colleagues
  • work effectively in a small, fast-moving team
  • collaborative, team-oriented mindset
  • confidence to contribute ideas, ask questions, and engage actively
  • organised approach to work
  • attention to detail
  • strong sense of ownership
  • ability to manage multiple tasks and priorities in a fast-paced environment
  • Comfortable working with ambiguity and rapid change
  • resilience to iterate quickly, adapt to new findings

Job Description

This 13-month sandwich placement offers a penultimate-year undergraduate the opportunity to contribute directly to the design and implementation of Engelhart’s central Agentic AI platform – a strategic, firm-wide initiative led by the Tech Data, AI & UX team. The role provides hands-on exposure to the cutting edge of enterprise AI, working alongside experienced data engineers, architects and quant developers in a live, production-grade environment. You will work closely with the AI & Data Engineering team to build core agentic infrastructure, integrate tooling via AWS Lambda and MCP servers, develop agent skills, and configure knowledge bases across user, chat, agent, and application contexts. You will explore and evaluate open-source and proprietary connectors within the rapidly evolving LLM and Generative AI ecosystem, and help roll out individual productivity tools such as Microsoft Copilot and Claude Code. All solutions will be hosted securely within Engelhart’s internal network, with models deployed in a dedicated VPC and governed access to firm data, with a strong preference for AWS-native and Bedrock-based architectures. Please note that to be eligible for consideration, candidates must be enrolled on a sandwich year degree and available to commence their placement in July 2026. This will be a full-time role, owning the following responsibilities: * Assist in the set-up and configuration of core agentic AI infrastructure, including orchestration layers, agent runtimes, and supporting services, deployed securely within Engelhart’s AWS VPC. * Build and maintain agent tooling integrations via AWS Lambda functions and MCP (Model Context Protocol) servers, enabling agents to interact with firm data, APIs, and internal systems. * Develop agent skills and configure knowledge bases, including document stores, vector databases (e.g. Postgres with pgvector, AWS Bedrock Knowledge Bases), and retrieval pipelines for user, chat, agent, and application contexts. * Research, evaluate, and help integrate open-source and proprietary accelerators, connectors, and frameworks (e.g. LangChain, LlamaIndex, n8n, etc) into the platform, assessing fitness for purpose in a regulated, IP-sensitive environment. * Support the deployment and end-user adoption of individual AI productivity tools, including Microsoft Copilot and Claude Code, ensuring secure configuration and appropriate access controls within Engelhart’s internal network. * Contribute to technical documentation, architecture diagrams, and internal knowledge sharing on AI tooling, design decisions, and implementation patterns to support team learning and continuity. * Collaborate with engineers, data scientists, and business stakeholders to iteratively test and improve agentic workflows, gathering feedback and translating it into technical improvements.

Requirements

  • Currently studying towards a Computer Science, Software Engineering, AI, Data Science, or related technical undergraduate degree at a UK university, eligible to undertake a full-time 13-month sandwich placement, and available from 01 July 2026.
  • A genuine passion for AI, Large Language Models, and Generative AI – not just as a user, but with curiosity about how they work and how to build with them.
  • Proficient in Python, with hands-on experience writing scripts, working with APIs, or building small applications – whether through coursework, personal projects, or hackathons.
  • Familiarity with cloud concepts or services (preference for AWS), containerisation (Docker), or REST APIs – even if only at an introductory or project level.
  • A proactive, self-directed learning style – able to research unfamiliar technologies, synthesise documentation, and form a view on trade-offs with limited guidance.
  • Good communication skills, with the ability to explain technical concepts clearly to both technical and non-technical colleagues, and to work effectively in a small, fast-moving team.
  • A collaborative, team-oriented mindset, with the confidence to contribute ideas, ask questions, and engage actively with engineers, data scientists, and business users.
  • An organised approach to work, with attention to detail, a strong sense of ownership, and the ability to manage multiple tasks and priorities in a fast-paced environment.
  • Comfortable working with ambiguity and rapid change, with the resilience to iterate quickly, adapt to new findings, and thrive in a technology landscape that evolves week to week.

Related Field

  • AI & Machine Learning

Related Subfield

  • AI Research

Languages

  • English

Nice to Haves

  • Prior exposure to LLM frameworks such as LangChain, LlamaIndex, or similar
  • experience with vector databases (e.g. pgvector, Pinecone, Chroma)
  • familiarity with AWS Bedrock, SageMaker, or equivalent managed AI services
  • Experience with version control (Git)
  • basic understanding of CI/CD pipelines or infrastructure-as-code (e.g. AWS CloudFormation, CDK)
  • Understanding of prompt engineering techniques, retrieval-augmented generation (RAG), or multi-agent system design patterns
  • Participation in AI/ML hackathons, open-source contributions, personal projects involving LLMs or automation, or active engagement with the AI development community (e.g. Hugging Face, GitHub, LangChain forums)
▶Apply Now

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