Sponsor Kantor White collar

Quantitative Trading Strategy Algorithm Engineer

Binance

Cara kami menyaring lowongan

LokasiHong Kong, Hong Kong
TipeFull time
LevelSenior
Model kerjaDi kantor
Diposting16 September 2026

Tentang pekerjaan

Rangkuman Get Karier, bukan salinan iklan aslinya

Binance mencari Quantitative Trading Strategy Algorithm Engineer untuk membangun sistem trading berbasis AI yang mencakup aset keuangan tradisional dan aset on-chain. Perannya mencakup seluruh siklus: menggali dan memvalidasi faktor, membangun model prediksi, menyusun strategi, sampai integrasi ke sistem trading live. Lokasinya Hong Kong, Taipei, atau Sydney. Iklannya tidak menyebut angka gaji.

Kualifikasi

Yang perlu kamu siapkan, versi ringkas
  • Minimal S2 di Ilmu Komputer, Matematika, Statistika, Financial Engineering, Fisika, atau bidang terkait.
  • Pengalaman riset strategi quantitative trading: factor mining, prediksi faktor, backtesting, dan deployment live.
  • Mahir Python dan pernah menerapkan ML/DL pada data time-series keuangan skala besar.
  • Paham mekanisme trading minimal satu pasar, termasuk biaya transaksi, likuiditas, dan slippage.
  • Nilai tambah: rekam jejak alpha yang konsisten, pengalaman lintas pasar tradisional dan on-chain, HFT atau market-making.

Deskripsi & syarat asli

Teks asli dari perusahaan, apa adanya. Tidak kami terjemahkan atau ubah.

Binance is a leading global blockchain ecosystem behind the world’s largest cryptocurrency exchange by trading volume and registered users. We are trusted by 300+ million people in 100+ countries for our industry-leading security, user fund transparency, trading engine speed, deep liquidity, and an unmatched portfolio of digital-asset products. Binance offerings range from trading and finance to education, research, payments, institutional services, Web3 features, and more. We leverage the power of digital assets and blockchain to build an inclusive financial ecosystem to advance the freedom of money and improve financial access for people around the world.

About the Role: We are building an AI-driven trading system that covers traditional financial assets (equities, etc.) and on-chain assets. We are seeking algorithmic researchers with deep understanding of trading strategies to participate in the full lifecycle — from factor mining and prediction to strategy construction and system integration — combining quantitative research expertise with AI technology to build a trading strategy system that generates sustainable alpha.

Responsibilities: Factor Mining & Validation: Discover, construct, and validate trading factors from multi-source data including market data, fundamental data, and on-chain data. Continuously iterate the factor library to identify effective alpha signals. Factor Prediction Modeling: Design and optimize prediction models using machine learning and deep learning methods to improve signal accuracy and stability while controlling overfitting and strategy decay. Strategy Design & Backtesting: Lead the design, backtesting, and live deployment validation of trading strategies — covering signal generation, portfolio construction, risk control, and execution optimization. Take ownership of strategy P&L and risk performance. Quant Strategy Pipeline Development: Build and refine the end-to-end quantitative trading strategy pipeline — from data ingestion, factor computation, model prediction, backtesting through to live execution — improving research efficiency, deployability, and reproducibility. Trading System Integration: Collaborate with engineering and data teams to solve technical challenges including data connectivity, low-latency execution, and strategy deployment, ensuring stable strategy operation in production. Cross-Market AI Trading: Explore the adaptation and implementation of AI-driven trading across both traditional financial markets (equities, futures) and on-chain asset markets, leveraging the unique characteristics of each.

Requirements: Master's degree or above in Computer Science, Mathematics, Statistics, Financial Engineering, Physics, or related fields, with a solid quantitative foundation and programming proficiency. Proven experience in quantitative trading strategy R&D, familiar with the full workflow of factor mining, factor prediction, strategy backtesting, and live deployment. Deep understanding of strategy P&L, risk, and alpha decay. Proficient in Python, with hands-on experience applying ML/DL methods in quantitative scenarios and processing large-scale financial time-series data. Familiarity with trading mechanisms and data characteristics of at least one market (equities, futures, or other traditional financial markets; or cryptocurrency / on-chain assets). Understanding of real-world factors such as trading costs, liquidity, and execution slippage. Experience building a complete strategy pipeline or quantitative research platform, with the ability to independently deliver an end-to-end strategy loop from data to live trading. Strong research capability and results-driven mindset, with the ability to continuously optimize strategy performance in a fast-iteration environment.

Bonus Qualifications: Track record of managing capital at scale in live trading or generating sustained alpha. Cross-market quantitative experience spanning both traditional finance and on-chain markets (DeFi, CEX, DEX). Familiarity with high-frequency trading, market-making strategies, or cross-market arbitrage. Practical experience applying frontier AI methods (large language models, reinforcement learning) to trading strategies.

Why Binance

  • Shape the future with the world’s leading blockchain ecosystem
  • Collaborate with world-class talent in a user-centric global organization with a flat structure
  • Tackle unique, fast-paced projects with autonomy in an innovative environment
  • Thrive in a results-driven workplace with opportunities for career growth and continuous learning
  • Competitive salary and company benefits
  • Work-from-home arrangement (the arrangement may vary depending on the work nature of the business team)

Binance is committed to being an equal opportunity employer. We believe that having a diverse workforce is fundamental to our success.

By submitting a job application, you confirm that you have read and agree to our Candidate Privacy Notice.

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