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DeepAlpha Quant Labs Ltd, a UK-based quantitative tech company, seeks a Founding Platform & AI Systems Engineer to design and build a scalable AI-powered platform. You will work closely with the Founder and quantitative team to transform research into production-grade software, with AI-assisted engineering workflows at the core.
Responsibilities span architecture, data pipelines, cloud infrastructure and secure deployment.
Package: Competitive salary + meaningful equity participation
About DeepAlpha
Founding Platform & AI Systems Engineer
DeepAlpha Quant Labs Ltd
Location: London / Hybrid
Type: Full-time
Package: Competitive salary + meaningful equity participation
About DeepAlpha
DeepAlpha Quant Labs is a UK-based quantitative technology company focused on the research, development and commercialisation of proprietary algorithmic trading software, AI-driven models, execution technology, risk engines and quantitative research tools.
Our team brings together decades of experience across quantitative trading, financial markets and technology, with notable industry awards and recognition in the space.
DeepAlpha is being built as an AI-native, IP-led technology company. Our objective is to combine specialist quantitative research with modern software engineering and artificial intelligence to create proprietary technology capable of being deployed across professional and institutional markets.
We are now building the core team that will take DeepAlpha from research and development through to production-ready commercial technology.
The Role
We are looking for an exceptional Founding Platform & AI Systems Engineer to become one of DeepAlpha's earliest technical hires.
This is not a conventional full-stack development role.
You will work directly with the Founder and quantitative research team to design and build the technology platform that turns quantitative research, models and algorithms into secure, scalable and commercially deployable software.
DeepAlpha intends to make extensive use of advanced AI coding tools, including Claude and agentic development systems. You will therefore be expected not only to write high-quality software yourself, but to design and manage AI-assisted engineering workflows that significantly increase the development capability of a small technical team.
You will have considerable influence over the architecture, technology stack, engineering standards and AI development environment of the business.
What You Will Build
Your work will span the full lifecycle from research prototype to production.
Key responsibilities will include:
AI-Native Engineering
DeepAlpha intends to use AI extensively as part of its operating model.
You will be responsible for helping establish an engineering environment where AI agents operate as a force multiplier for a small, highly capable human team.
This will include:
AI will accelerate development, but human technical accountability remains fundamental. You will ultimately be responsible for understanding the architecture and ensuring that production systems are reliable, secure and technically sound.
What We're Looking For
We are more interested in exceptional engineering judgement, problem-solving ability and adaptability than a candidate who simply matches a long list of technologies.
Essential
You should have strong experience in:
Most importantly, you should be capable of reviewing and challenging AI-generated work rather than simply accepting it.
Highly Desirable
Experience in some of the following would be particularly valuable:
You do not need to be an expert in every technology listed.
We expect AI-assisted development to reduce the importance of knowing every framework from memory. We care considerably more about your ability to design the right system, understand what the technology is doing and recognise when something is wrong.
You Do Not Need to Be a Quant Researcher
The role is not primarily responsible for inventing trading strategies.
Our quantitative researchers focus on areas such as:
Research → Signals → Models → Execution Logic → Risk → Validation
Your responsibility is primarily:
Architecture → Data → Software → AI Agents → Testing → Deployment → Monitoring → Commercial Product
The two functions work closely together.
You should therefore have a genuine interest in quantitative finance and be capable of understanding the research sufficiently to translate it into robust technology.
The Person
DeepAlpha is an early-stage company, so this role will suit someone who wants more than a conventional engineering job.
We are looking for someone who:
We particularly value people who are willing to ask:
“Is there a fundamentally better way of doing this?”
rather than automatically following established approaches.
What Success Looks Like
First 3 months
Help establish DeepAlpha's core engineering environment, repositories, data architecture, AI-agent workflows, cloud infrastructure and development standards.
3–6 months
Work with the quantitative team to convert research prototypes into production-grade modules, data systems, APIs, risk technology and controlled deployment environments.
6–12 months
Support controlled customer pilots, institutional integrations, monitoring, onboarding and the first commercial deployments of DeepAlpha technology.
Longer term, you will help build a platform capable of supporting multiple quantitative products, strategies, asset classes and institutional customers.
Why Join DeepAlpha?
This is an opportunity to join at the formative stage of a new quantitative AI company and have a meaningful influence over how its technology is built.
Rather than joining a large engineering organisation and maintaining one component of an established system, you will help determine the architecture of the business itself.
DeepAlpha intends to operate with a small, highly capable technical team amplified by AI, rather than building a conventional large development department.
For the right person, that means substantial responsibility, autonomy and the opportunity to participate through equity in the long-term value they help create.
We are looking for someone who could ultimately grow with the company from:
Founding Engineer → Technical Lead → Head of Engineering / CTO
based on capability, leadership and the evolution of the business.
Compensation