AI Engineer/Researcher (LLMs, Agent Systems, Synthetic Data)

wave group โ€ข United Kingdom
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AI Summary

Wave Group is seeking two AI Engineers/Researchers to build advanced AI systems for large-scale simulations. This role involves research into agent cognition, memory, and reasoning, alongside backend development. Ideal candidates possess deep research expertise, LLM/agent development experience, and strong Python/backend skills.

Key Highlights
Building advanced AI systems for large-scale simulations.
Focus on agent cognition, memory, reasoning, and orchestration.
Requires deep research expertise and strong software engineering fundamentals.
Key Responsibilities
Formulating research questions about human / agent behaviour
Designing experiments on synthetic populations
Validating model behaviour against real-world data
Deciding what architectures and methods should exist, not just implementing them
Technical Skills Required
Python FastAPI Flask Django LLMs NLP Simulation Relational databases Vector search Embedding systems
Benefits & Perks
Unlimited annual leave
Remote working around holidays
8% employer pension contribution
Comprehensive health insurance
ยฃ1,000 L&D budget
Nice to Have
Fine-tuning workflows
Model optimisation
Experiment tracking
Multi-agent systems
Simulations
Agent-based modelling
Building workflows/agents on top of existing models
Knowledge of cloud infrastructure
Containerisation
Deploying ML systems to production
Experience working in fast-moving environments with evolving requirements

Job Description


๐Ÿ’ป Job Title: AI Engineer/Researcher (x2)

๐Ÿ’ฐ Salary: ยฃ80-150k (DOE)

๐Ÿ“ Location: Soho (3 office days/week)

๐ŸŒด Benefits:

  • Unlimited annual leave + remote working around holidays if you wish
  • 8% employer pension contribution
  • Comprehensive health insurance
  • ยฃ1,000 L&D budget to use as you see fit

๐Ÿ“Š Industry: B2B - AI Research - Synthetic Data

๐Ÿ‘ฅ Team: ~25

๐Ÿ’ธ Funding: ~$15m (Series A)

๐Ÿ›‚ VISA sponsorship available if needed


This early-stage, well-funded start up is building advanced AI systems that model and simulate complex real-world behaviour at scale. Their platform enables organisations to test decisions, scenarios and strategies using large-scale AI-driven simulations, dramatically reducing time-to-insight compared to traditional approaches.


Following a strong early traction and funding injection, they're looking for 2x AI Engineers with deep Research expertise to join a small, highly technical team working at the intersection of large language models, agent systems and scalable backend infrastructure.


In this role, youโ€™ll work across agent cognition, memory, reasoning and orchestration, while ensuring the underlying platform is performant, cost-efficient and production-ready. You'll be:

  • formulating research questions about human / agent behaviour
  • designing experiments on synthetic populations
  • validating model behaviour against real-world data
  • deciding what architectures and methods should exist, not just implementing them


The perfect candidate would ideally have experience with LLMs / agent development as well as backend engineering, but the most critical part of the role is definitely deep research expertise,

making it ideal for someone who enjoys experimentation and research-driven iteration, but also cares about robust system design and real-world deployment.


โœ… Must have requirements:

  • PhD / MSc or substantial research experience in AI, ML, CS, Cognitive Science, Physics, Mathematics, or a related field
  • Demonstrated ability to conduct independent, hypothesis-driven research
  • Strong grounding in experimental design, statistical validation, quantitative evaluation
  • Strong software engineering fundamentals in Python and backend frameworks like FastAPI, Flask, Django
  • Hands-on experience working with ML / AI models (LLMs, NLP, simulation, or related areas)
  • Comfortable working in ambiguity, where the right question is often unclear at the start


๐Ÿ‘ Bonus points for:

  • Familiarity with fine-tuning workflows, model optimisation and experiment tracking
  • Experience with multi-agent systems, simulations or agent-based modelling
  • Experience building workflows/agents on top of existing models
  • Experience with relational databases and vector search / embedding systems
  • Knowledge of cloud infrastructure, containerisation and deploying ML systems to production
  • Experience working in fast-moving environments with evolving requirements

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