Avatar of 羅偉倫.
羅偉倫
Quant Trader
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羅偉倫

Quant Trader
Quant trader
Undisclosed
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National Taiwan University
New South Wales, Australia

Latar Belakang Profesional

  • Status sekarang
    Sudah bekerja
    Tidak terbuka untuk peluang
  • Profesi
    Machine Learning Engineer
    Trader
    Software Engineer
  • Bidang
    Venture Capital & Private Equity
  • Pengalaman Kerja
    2-4 tahun (relevan 2-4 tahun)
  • Management
    Saya berpengalaman mengelola 1-5 orang
  • Skil
    Python
    C++
    Machine Learning
    Deep Learning
    Reinforcement Learning
    Trading Strategies
    Credit Analysis
    Recommender Systems
    market making
    Crypto
  • Bahasa
    Chinese
    Bahasa ibu atau Bilingual
    English
    Fasih
  • Pendidikan tertinggi
    Master

Preferensi pencarian kerja

  • Jenis pekerjaan yang diinginkan
    Full-time
    Tertarik bekerja jarak jauh
  • Jabatan pekerjaan yang diinginkan
    Data Scientist/Quantitative Researchers & Traders
  • Lokasi pekerjaan yang diinginkan
    Taipei City, Taiwan
  • Bekerja lepas
    Pekerja lepas paruh waktu

Pengalaman Kerja

Quant Trader

Undisclosed
Full-time
03/2023 - Sekarang
Trading: Improve execution of current market-making strategies. Research: Queue Priority and Theo research for market-making strategies. Developer: Meta-programming to apply C++ strategies for different exchanges.
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Research Assistant

09/2020 - 01/2023
2 yrs 5 mos
There are several projects I did: Multiperiod Corporate Default Prediction • Provide a consistent term structure of cumulative default probabilities by a carefully designed neural network. • Tailor neural networks by economic domain knowledge to prevent our model from overfitting. • Outperform the state-of-art statistical model on AR(10%) and RMSE (20%) for US public companies from 1990-2017. • Publication: Wei-Lun Luo, Yu-Ming Lu, Jheng-Hong Yang, Jin-Chung Duan, Chuan-Ju Wang. ”Multiperiod Corporate Default Prediction Through Neural Parametric Family Learning.” Proceedings of the 2022 SIAM International Conference on Data Mining (SDM). Importance Sampling in Reinforcement Learning • Implement Approximate Bayesian Computation(ABC) algorithm on Multi Armed Bandits (MAB) problems for faster computation. Team leader, Recommendation Algorithms for KKStream • Collaborate with team members and others from KKStream to con- struct a knowledge graph for items to improve performance.
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Intern

07/2019 - 02/2020
8 mos
• Developed a trading platform with functions of optimization algorithms. • Implemented reinforcement learning to solve backward stochastic differential equations. • Designed an introduction lecture of reinforcement learning for a research group in the company (about 15 persons). • Applied machine learning approaches to Forex forecasting.
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Quantitative trader

08/2018 - 04/2019
9 mos
• Developed trading strategies on cryptocurrency markets. • Crawled cryptocurrency markets data from different exchanges. • Developed a part of trading API.

Quantitative Trader

07/2013 - 01/2016
2 yrs 7 mos
Developed over 30 rule-based trading strategies on TX and Forex and evaluated each strategy by return over maximum drawdown.

Edukasi

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Master of Science (MS)
Computer Science and Information Engineering
2018 - 2020
4/4.3 GPA
Aktivitas dan komunitas
IEEE, The 2018 Vechicular Networking Conference, App Contest Award - First Prize
Deskripsi
Thesis: Risk-based Reward Shaping Reinforcement Learning for Optimal Trading Execution Courses: 1. artificial intelligence-related courses (e.g., machine learning, deep learning) 2. courses about machine learning-based applications in finance
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Bachelor of Science (BS)
Money and Banking
2012 - 2016
3.6/4 GPA
Aktivitas dan komunitas
政大金融系公關長 2013 金融之夜主辦人 2013 政治大學財經實務研習社副社長 2013 - 2014 EMBA酒會協辦人 2014 政大金融系羽 2012 - 2016