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Data Engineer @Rooit Inc. (XO App)
2023 ~ 2023
AI工程師、機器學習工程師、深度學習工程師、資料科學家、Machine Learning Engineer、Deep Learning Engineer、Data Scientist
Within one month
試 - 統整和回報專案和測試進程 - 自動下注驗證RTP分布機率是否正常 - 協助計算遊戲機率和賭場優勢 Rooit inc., Data Engineer, Jan 2023 ~ Oct 2023 Python/MongoDB/Business Analysis/Data Analysis/Bigquery/Redis/Tableau/Neo4J/Flask - 利用Python爬取大陸論壇的人物照片擷取可用5000張圖片進行推薦 - 使用Selenium進行
Python
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Ready to interview
Full-time / Interested in working remotely
6-10 years
中國醫藥大學(China Medical University)
臨床醫學研究所
Avatar of 施冠宇.
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Data engineer @H2 Inc.
2021 ~ Present
AI engineer, ML engineer, data scientist
Within three months
on validation dataset. Accuracy 達到 93%, 已與醫師合作發表醫學 paper 3. Pathology案件 -建立 two stage segmentation model, stage one segmentation model 達到86% IOU, stage two segmentation model 達到 94% custom dice coefficient 學歷 清華大學 動力機械工程學系技能 Software AWS Airflow Dagster Docker Git Flask Pytorch Tensorflow DVC Languages Python SQL Bash-Shell script C/C++ Javascript Technical Skill Data Modeling Custom ETL Development Data Analysis System Resource Analysis AWS IaaS
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4-6 years
清華大學
動力機械工程學系
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老闆 @歐趴飲料店
2012 ~ 2018
AIOT開發工程師
Within one month
Linux設備開發 Android, IOS App 軟體開發並上架 Taichung City, Taiwan 技能 前端 Andorid Kotlin IOS Swift WEB Vue, Html, PHP, Javascript, Css, Ajax Linux Tkinter Unity UI/UX Photoshop, illustrator, Blender, SketchUp CI/CD Git 後端 Language Python, Php, Javascript Host Services AWS, GCP Framework Laravel , Flask, Django Database MySQL, MangoDB, Firebase Container Docker 工作經歷 技術部主管 • 黑瘋科技股份有限公司 十二月Present 研發beacon整體系統與產品
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6-10 years
Tunghai University
資訊
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Software Engineer @Amazon Web Services (AWS)
2023 ~ Present
資深前端工程師、資深後端工程師、全端工程師
Within one month
Excel
C#
flutter
Employed
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4-6 years
Tamkang University
資訊工程學系
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全端工程師 @鴻銘資訊有限公司
2022 ~ 2023
前端工程師 Front-End Developer
Within one month
JavaScript
SQL Server
MySQL
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Full-time / Interested in working remotely
4-6 years
國立勤益科技大學 National Chin Yi University of Technology
資訊管理學系

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Software Engineer
Synpulse
2022 ~ Present
台灣台中市
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Data Scientist, Software Engineer
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Artificial Intelligence / Machine Learning
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python
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國立成功大學
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Print
Zxcfjm0pllq5klucgpcd

Laurence Lin

Enthusiastic data scientist, willing to bring up AI solutions that would solve human life problems. Highly cooperative teamwork and curious about data insight information. Familiar with Python and SQL language, experienced of image processing and time series forecasting. Understand basic web development and RESTful API with Flask or FastAPI framework.


Taichung city,Taiwan

Email: [email protected]

Cell Phone: 0916-067399

Github: https://github.com/laurence-lin

LinkedIn:https://www.linkedin.com/in/laurence-lin-836412133/

Medium: https://lawrence123.medium.com/

Working Experience


Machine learning engineer (2020/09/01 ~ current) 

Hamastar Technology Corporation

Build data science application platform for data science developers and end users 

Develop data science solutions for web layout defect detection, save 70% of time for developers to examine the product


Skills


Programming: Python, R, SQL 
Machine Learning: Regression, Classification, Time Series Forecasting 
Framework: Scikit-learn, Keras, PyTorch 
Web Development: html, css, RESTful API 
Web Scraping: Selenium 
Data Visualization: Tableau


Projects


Retail Store Location Selection by Popularity Ranking: Collect geographic features from Foursquare API and Google Place API, use EDA for data analysis and preprocessing, build predictive model to rank the store popularity, and found the main characteristics that effects most of the retail store's popularity. Achieve 0.83 in NDCG@k metric comparable with previous research.

Methods: EDA, Google Place API, Foursquare API, SVR, Linear Regression, Neural Network

link: https://github.com/laurence-lin/Retail-Store-Location-Ranking


Credit Card Fraud Detection:  Predict the probability for credit card data fraud, apply feature engineering for data cleaning and transformation, use cross validation and ROC_AUC as evaluation for model performance.

Methods: EDA, LightGBM, Cross Validation, Logistic Regression

link: https://github.com/laurence-lin/Kaggle_competition/blob/master/FraudDetect/FraudDetection.ipynb

Projects


Retail Store Location Selection by Popularity Ranking: Collect geographic features from Foursquare API and Google Place API, use EDA for data analysis and preprocessing, build predictive model to rank the store popularity, and found the main characteristics that effects most of the retail store's popularity. Achieve 0.83 in NDCG@k metric comparable with previous research.

Methods: EDA, Google Place API, Foursquare API, SVR, Linear Regression, Neural Network

link: https://github.com/laurence-lin/Retail-Store-Location-Ranking


Credit Card Fraud Detection:  Predict the probability for credit card data fraud, apply feature engineering for data cleaning and transformation, use cross validation and ROC_AUC as evaluation for model performance.

Methods: EDA, LightGBM, Cross Validation, Logistic Regression

link: https://github.com/laurence-lin/Kaggle_competition/blob/master/FraudDetect/FraudDetection.ipynb

Education


IBM Data Science Professional(Certified) 

Coursera, June 2020 ~ August 2020

Google Data Analytics(Certified)

Coursera, April 2021 ~ June 2021

National Cheng Kung University / Engineering Science / Bachelor's degree

國立成功大學工程科學系

National Cheng Kung University / Engineering Science / Master degree

國立成功大學工程科學所

Master thesis: PM 2.5 forecasting using LSTM model


Resume
Profile
Zxcfjm0pllq5klucgpcd

Laurence Lin

Enthusiastic data scientist, willing to bring up AI solutions that would solve human life problems. Highly cooperative teamwork and curious about data insight information. Familiar with Python and SQL language, experienced of image processing and time series forecasting. Understand basic web development and RESTful API with Flask or FastAPI framework.


Taichung city,Taiwan

Email: [email protected]

Cell Phone: 0916-067399

Github: https://github.com/laurence-lin

LinkedIn:https://www.linkedin.com/in/laurence-lin-836412133/

Medium: https://lawrence123.medium.com/

Working Experience


Machine learning engineer (2020/09/01 ~ current) 

Hamastar Technology Corporation

Build data science application platform for data science developers and end users 

Develop data science solutions for web layout defect detection, save 70% of time for developers to examine the product


Skills


Programming: Python, R, SQL 
Machine Learning: Regression, Classification, Time Series Forecasting 
Framework: Scikit-learn, Keras, PyTorch 
Web Development: html, css, RESTful API 
Web Scraping: Selenium 
Data Visualization: Tableau


Projects


Retail Store Location Selection by Popularity Ranking: Collect geographic features from Foursquare API and Google Place API, use EDA for data analysis and preprocessing, build predictive model to rank the store popularity, and found the main characteristics that effects most of the retail store's popularity. Achieve 0.83 in NDCG@k metric comparable with previous research.

Methods: EDA, Google Place API, Foursquare API, SVR, Linear Regression, Neural Network

link: https://github.com/laurence-lin/Retail-Store-Location-Ranking


Credit Card Fraud Detection:  Predict the probability for credit card data fraud, apply feature engineering for data cleaning and transformation, use cross validation and ROC_AUC as evaluation for model performance.

Methods: EDA, LightGBM, Cross Validation, Logistic Regression

link: https://github.com/laurence-lin/Kaggle_competition/blob/master/FraudDetect/FraudDetection.ipynb

Projects


Retail Store Location Selection by Popularity Ranking: Collect geographic features from Foursquare API and Google Place API, use EDA for data analysis and preprocessing, build predictive model to rank the store popularity, and found the main characteristics that effects most of the retail store's popularity. Achieve 0.83 in NDCG@k metric comparable with previous research.

Methods: EDA, Google Place API, Foursquare API, SVR, Linear Regression, Neural Network

link: https://github.com/laurence-lin/Retail-Store-Location-Ranking


Credit Card Fraud Detection:  Predict the probability for credit card data fraud, apply feature engineering for data cleaning and transformation, use cross validation and ROC_AUC as evaluation for model performance.

Methods: EDA, LightGBM, Cross Validation, Logistic Regression

link: https://github.com/laurence-lin/Kaggle_competition/blob/master/FraudDetect/FraudDetection.ipynb

Education


IBM Data Science Professional(Certified) 

Coursera, June 2020 ~ August 2020

Google Data Analytics(Certified)

Coursera, April 2021 ~ June 2021

National Cheng Kung University / Engineering Science / Bachelor's degree

國立成功大學工程科學系

National Cheng Kung University / Engineering Science / Master degree

國立成功大學工程科學所

Master thesis: PM 2.5 forecasting using LSTM model