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ALGOQUANT

Senior Quant Researcher

United Kingdom
Posted about 22 hours ago
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AlgoQuant Asset Management

Dubai (preferred)

London

New York – Reports to Head of Research – Rolling start

About AlgoQuant

AlgoQuant Asset Management is a multi-strategy digital asset manager allocating capital across 25+ internal and external quantitative trading pods. Founded in 2018, we have evolved into an institutional platform combining trading edge with strong governance and advanced technology, serving family offices and institutional investors globally.

The role

We are hiring a Senior Quant Researcher with deep machine learning and deep learning expertise to drive the next generation of alpha research at AlgoQuant. This is a senior, high-ownership role for someone who has moved beyond applying ML frameworks — you understand why models work, where they break, and how to turn raw predictive signal into live, capital-weighted strategy.

You will lead research into complex, non-linear signal generation across digital asset markets, working across spot, derivatives, and on-chain data. You will own research end-to-end: from problem formulation and data architecture through to live deployment and performance attribution.

Reasons to use Rodeo

I’m in my final year doing Economics and I don’t know whether to apply for grad schemes now or do a masters first. What do you think?

Honest answer — it depends on where you want to end up. A lot of top grad schemes (Big 4, civil service, banking) don’t need a masters. Let’s look at the ones you’d be competitive for now, and we can decide if a masters actually adds anything.

Also worth knowing: most autumn 2026 applications are open now. Timing matters more than you think.

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Grad scheme, placement, apprenticeship? Not sure what you want yet — that's fine. Your agent talks it through with you and turns "I have no idea" into a shortlist.

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Graduate Consultant — 2026 Scheme

PwC·London, UK
£35,000/yr

Why you're a good match

Strong

Your economics background and your summer at a regional bank line up with what PwC looks for on the consulting scheme. Applications close in four weeks.

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It searches the market for you

Every day your agent scans the market matching roles against what actually matters to you, not just keywords on a CV.

Why you're a good match

You’ve got the grades and the economics background, and your bank internship is exactly the experience this scheme looks for. Apply soon — deadlines close within the month.

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Strong

Experience fit

Your summer at the bank plus your econometrics coursework map directly to the day-one responsibilities on this scheme — client modelling, market briefings, and deal support.

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Strong

Only hits

No noise. No "maybe this fits." Just roles with a clear explanation of why they're right — and where to focus when applying.

You will also set the standard for rigour and methodology across the research team.

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Responsibilities

  • Design and deploy advanced ML and DL models for alpha signal generation across digital asset markets
  • Work across the full model stack: feature engineering, architecture selection, training and validation regimes, and live signal monitoring
  • Apply and adapt state-of-the-art techniques — transformer architectures, graph neural networks, reinforcement learning, and ensemble methods — to financial prediction problems
  • Build robust, production-grade research pipelines with a rigorous approach to preventing lookahead bias, data leakage, and overfitting
  • Analyse microstructure, order flow, and cross-venue dynamics to enrich feature sets and improve signal quality
  • Collaborate with engineers to move models from research to production infrastructure
  • Mentor junior researchers and raise the bar for statistical rigour across the team
  • Contribute to shared research infrastructure, tooling, and datasets

What we are looking for

  • Exceptional quantitative background — PhD or equivalent research depth in machine learning, statistics, physics, mathematics, or computer science
  • Genuine expertise in modern ML and DL: transformers, attention mechanisms, graph neural networks, boosting algorithms (XGBoost, LightGBM), and reinforcement learning — not just familiarity, but hands-on implementation experience
  • A track record of applying ML in a live, capital-at-risk environment — attributable P&L or measurable out-of-sample performance from systematic strategies
  • Rigorous, almost paranoid approach to model validation — deeply experienced with the failure modes of ML in finance: overfitting, regime change, feature leakage, and non-stationarity
  • Strong programming skills — Python required; C++ or Rust a strong plus for production performance
  • Experience working with large, complex, or unconventional datasets; on-chain data experience a plus
  • Self-directed and high-agency — you set your own research agenda and drive it to completion
  • Crypto market exposure a strong plus; intellectual curiosity about digital asset market structure essential
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Skills

Machine Learning
Deep Learning
Python
Quantitative Research
Alpha Signal Generation
Transformer Architectures
Graph Neural Networks
Reinforcement Learning
XGBoost
LightGBM
C++
Rust
Statistical Rigour
Financial Modeling
On-chain Data Analysis
Model Validation

Location

United Kingdom

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