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Avatar of Ya-Hsien Wu.
marketing lead
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20%。 負責執行國外大型活動專案,獲利率達50%,創造上千萬獲利。 學歷/證照 台灣國立政治大學 企業管理研究所 MBA 2014 年 10 月年 2 月 GPA 4.13 國際專案管理師證照(PMP) Google Analytics(分析)IQ 認證語言 母語中文 Chinese-Native Speaker 流利英文 English-TOEIC 800/990 基礎俄文 Russian-TORFLⅠ/Ⅲ
Marketing
Product Marketing
Business Management
全职 / 对远端工作有兴趣
6 到 10 年
國立政治大學
marketing

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职场能力评价定义

专业技能
该领域中具备哪些专业能力(例如熟悉 SEO 操作,且会使用相关工具)。
问题解决能力
能洞察、分析问题,并拟定方案有效解决问题。
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遇到突发事件能冷静应对,并随时调整专案、客户、技术的相对优先序。
沟通能力
有效传达个人想法,且愿意倾听他人意见并给予反馈。
时间管理能力
了解工作项目的优先顺序,有效运用时间,准时完成工作内容。
团队合作能力
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专注于团队发展,有效引领团队采取行动,达成共同目标。
一個月內
AI Engineer
Logo of 中信金控_台灣人壽保險股份有限公司.
中信金控_台灣人壽保險股份有限公司
2022 ~ 现在
Taipei City, 台灣
专业背景
目前状态
就职中
求职阶段
正在积极求职中
专业
数据工程师, 数据科学家, 大数据开发人员
产业
银行
工作年资
2 到 4 年工作经验(4 到 6 年相关工作经验)
管理经历
技能
Python
SQL
语言能力
Chinese
母语或双语
English
进阶
求职偏好
希望获得的职位
AI Engineer
预期工作模式
全职
期望的工作地点
Taiwan, Taipei, 台灣
远端工作意愿
对远端工作有兴趣
接案服务
是,我利用业余时间接案
学历
学校
國立台灣大學 National Taiwan University
主修科系
Business Administration
列印

GISH G

SUMMARY
Aiming to be a data scientist unicorn who excels at applied machine learning in a business/finance-related field.

DevOps Engineer(Python) for Automatic Claim Processor (ACP) - OCR System (Hospital Diagnosis/Receipt).

Applying tree-based algorithms to model Credit Scoring predictions in the finance industry.

Achieving Hyperautomation through AI and RPA, which uses a special set of tools to automate tasks.


Working Experience

Nov. 2022 -

Now

Artificial Intelligence Engineer  @ CTBC Taiwan Life Insurance 

AI Team

DevOps Engineer(Python) for Automatic Claim Processor (ACP) - OCR System (Hospital Diagnosis/Receipt)

1. Receipt Recognition Service (2023) OCR:
Successfully improved OCR model accuracy from 80% to 96% in 2023 by integrating current model with Microsoft Azure Form Recognizer output.
Seamlessly integrated Microsoft Azure services into our existing Receipt system's data pipeline.
Engineered postprocessing data solutions to cater to diverse format requirements from 17 different hospitals.
Designed and executed comprehensive unit tests to ensure robustness and reliability.

2. Diagnosis Recognition Service (2022 - 2023) NLP/OCR:
Continuously maintain and monitor the Diagnosis Recognition service, ensuring optimal performance.
Regularly update the synonym table to align with real-world Diagnosis cases.
Conduct rigorous pytest to guarantee the stability of all deployments in the production environment. 

July 2020 -

Sept.
2022

Machine Learning Engineer  @ E.SUN COMMERCIAL BANK, LTD.

Intelligent Banking Division(智能金融處)

Building Machine Learning models to apply risk assessment in banking.
Specialized in credit card and Join Credit Information Center(JCIC) data.
ETL data and construct data pipelines for retraining models/in production.

Working in RPA(Robotic Process Automation) team, Web Scraping(crawler) and automating routine tasks to achieve labor cost reduction.

June 2019 - May 2020

Data Scientist Intern  @ Cathay Financial Holdings. 國泰金控

Digital data & Technology (DDT, 數數發)
Research into Interpretable Machine Learning and its existing algorithms. Experimented LIME & SHAP on open data. (GitHub)
Real Estate Evaluation model – Geographical/Credit Card data gathering, cleaning, feature engineering (Hit-rate performance improved from 55% to 70%)

Python


  • Machine learning
  • Data Pipelines
  • Web Crawlers
  • PyTorch, Airflow, Pandas, docker

SQL

  • Extract-Transform-Load(ETL)
  • Efficiency(Window Functions)

Language


  • Chinese(Native)
  • English
    (TOEIC 905/990 TOEFL 96/120)

Project(@ Esun only) (Powerpoint demo link, click me)

Internal ratings-based (IRB) model -Credit Card

Aiming to reduce risks from capitals through more accurate models by following IRB method.

Applied tree-based methods to produce pd/lgd/ead predictions for computing expected credit loss.

Saved more than 50 billion in capital  through reducing the capital requirement for Capital Adequacy Ratio (CAR).

JCIC Superset - Data ETL and Pipeline

A wide variety of storage methods by individual departments causes difficult time exploring data, and unnecessary duplication of effort on different projects.

Aiming to make an united database and features by extracting and integrating data from various sources through data munging.

Integrated various data sources, resulting in 99% consistency and 80% less effort on data preprocessing.

Monitoring Data Pipelines through Apache Airflow(Refactoring ETL codes with DAGs)

RPA - TGOS latitude longitude conversion

Fetch all Taiwan address from Dept. of Household Registration through Selenium, using doorplate number.

Web crawling government TGOS website to get latitude and longitude from address.

RPA - Miscellaneous automation tasks

1. Automating Bank Trust Dept. AS400 system routine tasks through Pywinauto, saving 8 labor hours/week.

2. Automating Asset Management Dept. routine Excel and PDF tasks through Tabula, saving 16 labor hours/week. 

Education

2018 - 2020

National Taiwan University(Master) - Graduated on 2020

Business Administration/Big data analytics                                                             GPA  4.1/4.3

2012 - 2016

National Chengchi University(Bachelor) - Graduated on 2016

Majored in Management Information System/ Minored in Accounting           GPA  3.8/4

Competitions (Github)

•    89/1366
E-Sun Credit Card Default Detection(玉山人工智慧公開挑戰賽-信用卡盜刷偵測)

•    7/86
Taishin Financial Product Purchase Prediction(第二屆商業模式與大數據分析競賽 台新銀行)

•    685/2281(public)
Kaggle Deepfake Detection Challenge

English Certifications

  • TOEIC 905/990 (on 2016)

•    TOEFL 96/120 (on 2020)


简历
个人档案

GISH G

SUMMARY
Aiming to be a data scientist unicorn who excels at applied machine learning in a business/finance-related field.

DevOps Engineer(Python) for Automatic Claim Processor (ACP) - OCR System (Hospital Diagnosis/Receipt).

Applying tree-based algorithms to model Credit Scoring predictions in the finance industry.

Achieving Hyperautomation through AI and RPA, which uses a special set of tools to automate tasks.


Working Experience

Nov. 2022 -

Now

Artificial Intelligence Engineer  @ CTBC Taiwan Life Insurance 

AI Team

DevOps Engineer(Python) for Automatic Claim Processor (ACP) - OCR System (Hospital Diagnosis/Receipt)

1. Receipt Recognition Service (2023) OCR:
Successfully improved OCR model accuracy from 80% to 96% in 2023 by integrating current model with Microsoft Azure Form Recognizer output.
Seamlessly integrated Microsoft Azure services into our existing Receipt system's data pipeline.
Engineered postprocessing data solutions to cater to diverse format requirements from 17 different hospitals.
Designed and executed comprehensive unit tests to ensure robustness and reliability.

2. Diagnosis Recognition Service (2022 - 2023) NLP/OCR:
Continuously maintain and monitor the Diagnosis Recognition service, ensuring optimal performance.
Regularly update the synonym table to align with real-world Diagnosis cases.
Conduct rigorous pytest to guarantee the stability of all deployments in the production environment. 

July 2020 -

Sept.
2022

Machine Learning Engineer  @ E.SUN COMMERCIAL BANK, LTD.

Intelligent Banking Division(智能金融處)

Building Machine Learning models to apply risk assessment in banking.
Specialized in credit card and Join Credit Information Center(JCIC) data.
ETL data and construct data pipelines for retraining models/in production.

Working in RPA(Robotic Process Automation) team, Web Scraping(crawler) and automating routine tasks to achieve labor cost reduction.

June 2019 - May 2020

Data Scientist Intern  @ Cathay Financial Holdings. 國泰金控

Digital data & Technology (DDT, 數數發)
Research into Interpretable Machine Learning and its existing algorithms. Experimented LIME & SHAP on open data. (GitHub)
Real Estate Evaluation model – Geographical/Credit Card data gathering, cleaning, feature engineering (Hit-rate performance improved from 55% to 70%)

Python


  • Machine learning
  • Data Pipelines
  • Web Crawlers
  • PyTorch, Airflow, Pandas, docker

SQL

  • Extract-Transform-Load(ETL)
  • Efficiency(Window Functions)

Language


  • Chinese(Native)
  • English
    (TOEIC 905/990 TOEFL 96/120)

Project(@ Esun only) (Powerpoint demo link, click me)

Internal ratings-based (IRB) model -Credit Card

Aiming to reduce risks from capitals through more accurate models by following IRB method.

Applied tree-based methods to produce pd/lgd/ead predictions for computing expected credit loss.

Saved more than 50 billion in capital  through reducing the capital requirement for Capital Adequacy Ratio (CAR).

JCIC Superset - Data ETL and Pipeline

A wide variety of storage methods by individual departments causes difficult time exploring data, and unnecessary duplication of effort on different projects.

Aiming to make an united database and features by extracting and integrating data from various sources through data munging.

Integrated various data sources, resulting in 99% consistency and 80% less effort on data preprocessing.

Monitoring Data Pipelines through Apache Airflow(Refactoring ETL codes with DAGs)

RPA - TGOS latitude longitude conversion

Fetch all Taiwan address from Dept. of Household Registration through Selenium, using doorplate number.

Web crawling government TGOS website to get latitude and longitude from address.

RPA - Miscellaneous automation tasks

1. Automating Bank Trust Dept. AS400 system routine tasks through Pywinauto, saving 8 labor hours/week.

2. Automating Asset Management Dept. routine Excel and PDF tasks through Tabula, saving 16 labor hours/week. 

Education

2018 - 2020

National Taiwan University(Master) - Graduated on 2020

Business Administration/Big data analytics                                                             GPA  4.1/4.3

2012 - 2016

National Chengchi University(Bachelor) - Graduated on 2016

Majored in Management Information System/ Minored in Accounting           GPA  3.8/4

Competitions (Github)

•    89/1366
E-Sun Credit Card Default Detection(玉山人工智慧公開挑戰賽-信用卡盜刷偵測)

•    7/86
Taishin Financial Product Purchase Prediction(第二屆商業模式與大數據分析競賽 台新銀行)

•    685/2281(public)
Kaggle Deepfake Detection Challenge

English Certifications

  • TOEIC 905/990 (on 2016)

•    TOEFL 96/120 (on 2020)