Quant Trader / Researcher

ICEO - Venture Builder

Warwick

Remote

GBP 70,000 - 120,000

Full time

14 days+

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Benefits offered by this job

38 days of paid vacation leave per year
Flexible working hours
Remote-first company
Autonomy to explore ideas

Job summary

A global trading firm is seeking a Quant Trader / Researcher to develop trading strategies and support the trading team by leveraging mathematical models and large datasets. Candidates should have a strong programming background and experience in algorithmic trading. The role offers remote work and competitive benefits, including generous vacation time.

Qualifications

  • 5+ years of experience in a quant, algo trading, or data science role.
  • Experience with digital assets and market-making strategies.
  • Strong communication skills for teamwork.

Responsibilities

  • Research and develop systematic trading strategies.
  • Build and validate backtesting frameworks.
  • Monitor live strategy performance and adjust as needed.
  • Build models for risk exposure and PnL attribution.
  • Track market microstructure changes and provide quantitative insights.

Skills

Strong programming skills in Python
Familiarity with distributed computing
Knowledge of probability and statistics
Experience with algorithmic trading
Algorithmic trading
Time-series analysis

Education

Degree in Math, Physics, CS, Engineering, Statistics, or related discipline

Tools

C++
Rust

Job description

Quant Trader / Researcher

Join to apply for the Quant Trader / Researcher role at ICEO - Venture Builder.

We are looking for a Quant Trader / Quantitative Researcher to support our trading team by developing mathematical models, analyzing large datasets, and designing algorithmic trading strategies across digital asset spot and derivatives markets. You will work closely with traders, engineers, and product teams to identify inefficiencies, optimize execution, and contribute to the build‑out of systematic strategies and risk models.

You would be joining a global digital‑asset proprietary trading firm operating across major centralized exchanges. Our team runs multiple strategies, including market making, arbitrage, and systematic trading where both technology and quantitative research play a central role in our performance.

Key Responsibilities
  • Strategy Research & Development: Research, design, and prototype systematic trading strategies across spot, perp, and funding markets. Identify alpha opportunities using statistical, ML‑based, or microstructure‑driven approaches. Analyze exchange data (order books, trades, liquidations, funding rates, volatility) to detect patterns and market regimes. Develop predictive models for price movements, volatility surfaces, order flow imbalance, and liquidity conditions.
  • Backtesting & Simulation: Build robust backtesting frameworks that accurately model exchange mechanics (fees, funding, latency, depth, liquidation rules, etc.). Run simulations to evaluate performance, edge stability, and risk exposure under different market regimes. Validate strategy assumptions with sensitivity and stress tests.
  • Production Deployment: Implement models into production trading systems in collaboration with engineering. Monitor live strategy performance and adjust parameters according to market dynamics. Contribute to execution systems, including smart routing, hedging logic, and risk overrides.
  • Risk Management: Build and maintain models for PnL attribution, risk exposure, slippage, and tail events. Develop monitoring tools for leverage, liquidity crunches, and liquidation cascades. Provide insight into market microstructure risks across CeFi and DeFi venues.
  • Research & Market Intelligence: Track exchange‑level changes (funding mechanisms, fee structures, margin rules). Analyze competitor markets, price indexes, and cross‑exchange spreads. Support internal teams (Product, Lending, Derivatives, Strategy) with quantitative insights.
Qualifications
  • Technical Skills: Strong programming skills in Python, C++, or Rust (Python required). Familiarity with distributed computing, large dataset handling, and time‑series databases. Knowledge of probability, statistics, optimization, and numerical methods. Experience with algorithmic trading, HFT, or market‑making strategies.
  • Domain Experience: Experience with digital assets, perpetual futures, funding rates, liquidations, index/mark prices, or CEX/DEX microstructure is highly preferred. Understanding of leverage/margin systems and risk models is a plus. Prior work on cross‑exchange arbitrage, statistical arbitrage, execution algorithms, or options/vol surfaces is beneficial.
  • Soft Skills: Highly analytical and comfortable with ambiguity. Ability to translate mathematical ideas into production‑level code. Strong communication skills for working with traders, engineers, and product teams. Self‑driven, curious, and excited to solve complex quantitative problems.
Advantage if you have
  • Experience with reinforcement learning or deep learning applied to trading.
  • Contributions to open‑source quant/trading libraries.
  • Background in cryptography, distributed systems, or blockchain networks.
  • Experience with real‑time systems or low‑latency infrastructure.
  • Degree in Math, Physics, CS, Engineering, Statistics, or related discipline.
  • At least 5 years of experience in a quant, algo trading, or data science role.
What we offer
  • Remote‑first company – you can work from anywhere in the world.
  • Flexible working hours – we have core working hours (11 am–3 pm CET) with flexibility outside those hours.
  • 38 days of paid vacation leave per year + 14 days of paid sick leave.
  • Forward‑thinking team with autonomy to make choices and explore new ideas.
The recruitment process
  • Stage 1: Screening with TA Partner – basic information about ICEO, the project, the role, and the offer. General questions about your experience (about 30 min).
  • Stage 2: Interview with Senior Trading Analyst – focus on domain check: trading strategies, order execution, modeling, analysis, etc. (30 min).
  • Stage 3: Interview with Head of Technology – focus on tech and infra understanding: coding skills, order routing, algos, etc. (30 min).
  • Stage 4: Final interview with CEO of the venture – focus on overall company and culture fit (30 min).
Seniority level

Not Applicable

Employment type

Full‑time

Job function

Finance and Sales

Industries

Internet Publishing

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