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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
Python
Data Analysis
Data Science
Unemployed
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
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Avatar of the user.
Past
Senior Data Analyst @趨勢科技
2022 ~ Present
Data Scientist, Data Analyst, Machine Learning Engineer
Within one month
python
R
SQL
Unemployed
Ready to interview
Full-time / Interested in working remotely
4-6 years
輔仁大學 Fu Jen Catholic University
統計資訊學系
Avatar of 陳勤霖.
Avatar of 陳勤霖.
Past
博士後研究員 @洛桑大學神經發育疾病實驗室
2023 ~ 2023
Data Scientist, Data Analyst, Machine Learning Engineer
Within one month
學腦科學實驗室 1. 神經電生理訊號分析、神經細胞追蹤分析,與藥理試驗。 2. 研究論文撰寫與國際研討會的舉辦。 技能 Data Science Data Analysis, Image Analysis, Machine Learning, Deep Learning, Statistical Analysis, Data visualization Programming Python, PyTorch, NumPy, Pandas, Matplotlib, Scikit-Learn, Git, PostgreSQL, Docker Biotechnology Neuroscience, Genetics, Imaging, Scientific Writing Soft skill Project Management, Probelm Solving, Team Player, Proactive Communication 語言 English — 專業 Chinese — 母語或
Data Science
Data Analysis
Machine Learning
Unemployed
Ready to interview
Full-time / Interested in working remotely
4-6 years
洛桑聯邦理工學院(EPFL)
神經科學
Avatar of 梁賦康 (Foo-Hong, Leong).
Avatar of 梁賦康 (Foo-Hong, Leong).
Product Manager @東元電機股份有限公司 (TECO Electric & Machinery Co. Ltd.)
2023 ~ 2023
Data Scientist, Data Analyst, Machine Learning Engineer
Within one month
started to learn Python in 2018 at TEDU and my first project was the Stock Trend Prediction by CNN. I kept using Python to implement web crawling, OOP, and Pandas in my job, intend to let my work become more automated. I used those techniques to automate the data-gathering problem, which shorten the existing progress duration. I'm very passionate about Data Scientist and Machine Learning. Work Experience Product Manager • 東元電機股份有限公司 (TECO Electric & Machinery Co. Ltd.) JanuaryOctoberProduct Analytics 2. Market Trend Analytics 3
Python
Power BI
Data Analytics
Employed
Ready to interview
Full-time / Interested in working remotely
6-10 years
國立成功大學 National Cheng Kung University
Mechanical Engineering
Avatar of 李孟霖.
Avatar of 李孟霖.
資深資料工程師 @緯創資通股份有限公司
2020 ~ Present
Data Analyst、Data Engineer、Data Scientist、Customer Experience Analyst、Solution Architect、Cloud Architect
Within one month
作經歷 緯創資通股份有限公司,2020 年 7 月年 3 月 「HR Digital Transformation Team Leader」 構想大型數位轉型專案,尋求資源並架構數位轉型藍圖 (構想Data Center、人才運營平台等數轉專案) Azure HR Domain 負責人;Power Platform HR Domain 負責人 ;one of Wistron Microsoft Copilot Top 300 users 具Power BI講師及實習生帶領經驗 「HR Data Center
python
PowerBI
Power Platform
Employed
Ready to interview
Full-time / Interested in working remotely
4-6 years
元智大學 Yuan Ze University
工業工程與管理學所
Avatar of the user.
Avatar of the user.
Past
Data Analyst @趨勢科技 TrendMicro
2021 ~ 2024
Data Analyst、Data Engineer、Data Scientist、Customer Experience Analyst
Within one month
R
PL/SQL
Python
Unemployed
Ready to interview
Full-time / Interested in working remotely
6-10 years
天主教輔仁大學 FU JEN CATHOLIC UNIVERSITY
金融所
Avatar of 陶俊良.
Avatar of 陶俊良.
資料分析師 Data Analyst @Portto 門戶科技| Blocto
2022 ~ 2024
Data Analyst、Data Engineer、Data Scientist、Customer Experience Analyst
Within one month
Portto 門戶科技| Blocto • 九月三 月 2024 Main Responsibilities: Establishing Data Pipeline Exploring new product features and competitor analysis on Dune Dashboard on the EVM User tagging for the Growth team (including Discord bot for monitoring Project details: Data Pipeline Regularly integrating client-side and BE data with external APIs and data collected by bots on Bigquery Establishing a systematic coding data table combined with Slack bot command manual and automatic data replenishment Daily data monitoring with Slack bot Planning client-side (app, sdk js) Amplitude event tracking to maximize data collection Using existing data to
python
R
MySQL
Employed
Ready to interview
Full-time / Interested in working remotely
4-6 years
臺灣大學
流行病學與預防醫學所 生物統計組
Avatar of Vel Tien-Yun Wu.
Avatar of Vel Tien-Yun Wu.
Data Engineer @Groundhog Technologies Inc.
2021 ~ 2024
Data Analyst、Data Engineer、Data Scientist、Customer Experience Analyst
Within one month
Vel Tien-Yun Wu I bring 5 years of hands-on experience in data engineering and software development, with a focus on building scalable data processing systems utilizing Hadoop, Spark, Kafka and Docker. My expertise in developing efficient ETL pipelines has been fundamental in optimizing data workflows for various data warehouses, enhancing data integrity and availability. My track record includes managing high-volume data pipelines, automating scheduling processes to improve operational efficiency, and deploying monitoring solutions that have reduced Mean-Time-To-Repair (MTTR) by 40%. I have a strong foundation in SQL, especially PostgreSQL, which enables
Git
Python
Scala
Employed
Ready to interview
Full-time / Interested in working remotely
4-6 years
University of Illinois at Urbana-Champaign, School of Information Sciences
Information Management
Avatar of Evan Wu.
Avatar of Evan Wu.
Back End Devel0per @英仕國際
2020 ~ Present
Data Analyst 數據分析師 / Data Scientist 資料科學家
Within one month
Evan Wu Lorem ipsum dolor sit amet, consectetuer adipiscing elit, sed diam nonummy nibh euismod tincidunt ut laoreet dolore magna aliquam erat volutpat. Ut wisi enim ad minim veniam, quis nostrud. Taiwan 工作經歷 Back End Devel0per • 英仕國際 三月Present Lorem ipsum dolor sit amet, consectetuer adipiscing elit, sed diam nonummy nibh euismod tincidunt ut laoreet dolore magna aliquam erat volutpat. Java Software Developer • iiNumbers, Inc. / 木刻思股份有限公司 五月九月 2020 Lorem ipsum dolor sit amet, consectetuer adipiscing elit, sed
JAVA
Golang
SQL
Employed
Ready to interview
Full-time / Interested in working remotely
10-15 years
National Chung Hsing University
Computer Science and Engineering
Avatar of 李慕全(MuChuan Li).
Avatar of 李慕全(MuChuan Li).
Past
Service Provider @Taron Solutions Limited
2023 ~ 2023
AI工程師、機器學習工程師、電腦視覺工程師、資料科學家、Machine Learning Engineer、Computer Vision Engineer、Data Scientist
Within one month
李慕全(MuChuan Li) 畢業於國立臺北科技大學資工所,研究領域為深度學習、電腦視覺、及影像處理。在學期間致力於應用電腦視覺技術解決交通問題,擁有多項產學合作的專案開發經驗,亦在電腦視覺領域中發表過多篇學術論文,主要研究主題包含物
Machine Learning
Computer Vision
Pytorch/Tensorflow
Unemployed
Ready to interview
Full-time / Interested in working remotely
4-6 years
國立臺北科技大學
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Micron Technology 台灣美光
2022 ~ Present
Taiwan
Professional Background
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Data Scientist
Fields of Employment
Software
Work experience
4-6 years
Management
Skills
Word
PowerPoint
Excel
Photoshop
Google Drive
Outlook
C#
Python
Tensorflow
Keras
SQL
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English
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Southern Taiwan University of Science and Technology
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Print
Profile 00 00@2x

Abo Lei

@Jabil Corp. Data science team, Data scientist

Has strong computer vision background, by using data scientific tools to analyze data, make data speak, applied AI-based cosmetic inspection solution to manufacturing shop-floor.

Have more than a 4-year experience in system development and software design

Interest in cutting-edge technology, especially the term of AI, have a own project of Deep Learning.

Good at self-learning, Desire to recognize the real world through Data.

Data Scientist

Taichung,TW

Birth : 1994.03.08
Email : [email protected]

技能 Skills


 Programming

  • C#
    • Socket
    • WInForm
    • Thread
    • I/O
    • WinAPI
    • Visual Studio
  • IDE
    • Visual Studio
    • Visual Studio Code

AI

  • Python
    • Tensorflow
    • Keras
    • NumPy
    • Pandas
    • Matplotlib
  • Azure
    • DevOps
    • Machine Learning Service
    • Storage Explorer
    • Batch service
    • Data Factory
  • Tools
    • Jupyter Notebok
    • PyCharm
    • Visual Studio code

Version control

  • Git
  • SVN
  • Azure DevOps Repo

知識 Knowledge


Languages

  • Chinese - Mandarin
    • Native language
  • Chinese - Taiwanese
    • Native language
  • English
    • Medium
    • TOEIC 670

Architecture

Design robust, maintainability, readable software architecture.

  • Coding standard
  • DocFx
  • StyleCop
  • Efficiency Design
  • Maintainability Design
  • Robust
  • Infrastructure Design

Team work

Conversation with team members, cutting-edge technology sharing,

  • Technical Sharing
  • Microsoft To-Do
  • Microsoft Teams
  • Trello
  • Azure DevOps Boards
  • Github

Computer science

  • Data structure
  • Operation System
  • Algorithm


工作經歷 Work experience

Jabil Corp. - Data Scientist, 2019 Sep - Now

Jabil (NYSE: JBL) is a manufacturing solutions provider that delivers comprehensive design, manufacturing, supply chain and product management services. Leveraging the power of over 200,000 people across 100 sites strategically located around the world.


Responsibilities : 

 1. Using modern deep learning tools to perform cosmetic defect detection.

 2. Data visualization, make data speak to help factory to make decisions.

 3. Leading-in infrastructure concepts. 

 4. Design/Develop a infrastructure for scrum development. 

 5. Design/Develop automation control system with C#/C++. 

 6. Team work with external corporations in AI projects.


  • Improve inspection efficiency by collecting data from the shopfloor. 
  • Analyze data to help improve the system or inspect whether the demands from business side is doable. 
  • Do researches for new ML models (recommender model, NLP model) or architectures which are suitable for the system. 
  • Key Projects: 
    • AI-based real-time Optical Inspection System 
      • Objective: 
        • Improve Inspection accuracy of AOI system by collecting data from manufacturing machine. 
        • Reduce the requirement of intensive workforce for cosmetic inspection.
      • Responsibilities: 
        • Play as the key role in design and development the end-to-end AI-based solution. 
        • Make sure the images/data are being collected from AOI is in correct format every single day. 
        • Analysis 325 GB images/data from shopfloor every single day. 
        • High resolution image (10,000-pixel by ~7,000-pixel) AI-based cosmetic inspection. 
        • Cooperate with Microsoft data science team to brainstorm the better solution. 
        • Build ML model to predict each product to see if there is any defect on the product. 
        • Use Azure Machine Learning Workspace to train/evaluate the model.
      • Achievements: 
        • Reduce the overkill rate from 20% to 6.3%. 
        • Build up the end-to-end deployment through Azure DevOps pipeline. 
        • Deliver the AI-based solution to shopfloor.
      • Tools: 
        • Tensorflow (Keras): 
          • Transform data into tensor object. - Build LeNet model. 
          • Build Variational Auto-Encoder model. 
          • Transfer learning from trained Efficient-Net. 
          • Record metrics for trace the training process. 
          • Save trained model weights for prediction. 
      • Scikit-Learn: 
        • Training set and testing set split. 
        • Computing metrics (e.g., confusion matrix, ROC curve, AUC, recall…etc.)
      • OpenCV: 
        • Image preprocessing (e.g., find contours, fit rectangle, rotate, color masking…etc.) 
      • Scikit-Image: 
        • Find shifted x, y based on golden image. 
        • Register translated images. 
        • Image I/O: read image and save image. 
      • Numpy: 
        • Crop image with certain ROIs. 
        • Numpy object mathematic batch computing. 
      • Tensorboard: 
        • Visualize the metrics from the whole training process. 
      • Matplot/Plotly: 
        • Data visualization (e.g., line chart, pie chart, scatters, confusion matrix…etc.). 
      • Imgaug: 
        • Enlarge data set by using image augmentation. 
      • Pandas: 
        • Manipulate data as table-liked object. 
        • Read/write csv. 
      • Docker: 
        • Containerize .NET core micro services written by .NET C#. 
        • Build docker compose to orchestrate micro services. 
      • Azure DevOps: 
        • Version control for codes by using Azure Git Repo. 
        • Merge branches to master branch. 
        • Working items (user story/task/bug) assignment, update by using Azure Board. 
        • Design pipeline for auto-unit test and auto-deployment when there is any update of codes by Azure Pipeline. 
        • Trigger auto-retrain pipeline for ML model when there is any update of ML-related codes. 
      • Azure: 
        • Data transfer from shopfloor by using Azure Data Factory. 
        • Data storage by using Azure blob storage. 
        • Train/evaluate ML model by using Azure Machine Learning Workspace. 
      • RabbitMQ: 
        • Message queue architecture to build asynchronous API call.
        • Design topology of message queue (e.g., fan-out, multiple binding, subscribing…etc.)

Company@2x

Jabil Corp. - Programmer Analyst, 2017 Feb - 2019 Sep

Improve the efficiency of making products in the shopfloor.  

  • Key Projects: 
    •  Infrastructure (Common library) 
      • Achievements: Boost the development time more than 10% faster. 
      • Tools: .NET C# 
    •  AGV (Automated guided vehicle) System 
      • Achievements: Reduce the 10% workforce requirement in the shift. 
      • Tools: .NET C#
    • ◼ Automation System
      • Achievements: Integrate the AGV system with automation system. 
      • Tools: Code-gear C++
    • ◼ MES (Manufacturing execution system) System 
      • Achievements: Operator in the shopfloor can scan face to enter the MES system. 
      • Tools: Code-gear C++

Company@2x

Innolux Corp. - Computer vision Intern, 2015 June - 2016 July

As a leading TFT-LCD panel supplier, Innolux has been deeply engaged in the research and development of TFT-LCD technology and production with its abundant innovative energy and insistence on high quality. Specialized in manufacturing TFT-LCD panel.  

  • Key Projects: 
    • Color tag categorization 
    • Objective: 
      • To distinguish different color of tags on the LCD panel. 
      • Reduce the requirement of labor in the shopfloor to categorize the tag on the panel. 
    • Responsibilities: 
      • Develop a function integrate with AOI system to categorize the color on the LCD panel. 
    • Achievements: 
      • The function can 100% categorize different color tags. 
      • Replace the human color-check station in the shopfloor by the system. 
    • Tools: 
      • .NET C#: Design the algorithm to identify the color of the tag.

Company@2x

學歷和其他經歷 Education and misc experience

AI Academy - Trainee, 2019 June - 2019 Sep

Experience : 

 1. Training AI technology/knowledge every Saturday. 

 2. Cutting-edge algorithm introduction. 

 3. Build up data science fundamental knowledge.

Company@2x

CSIE. - Southern Taiwan university of science and technology, 2012 Sep - 2016 June

Learning : 

 1. Operation systems 

 2. Data structure 

 3. Linear algebra 

 4. Discrete mathematics 

 5. Engineering mathematics 

 6. Software languages : C#/C++/Python/Java/Java script...etc.

Company@2x

自傳 Autobiography

 I have more than a 4-year experience in system development and software design (Automation system, MES system, Machine vision, Data science, System refactoring, software architecture design), and I am also passionate about discovering cutting-edge technology in order to see if it can help a company develop more efficiently. I have been professionally using C++ and SQL database for 3 years. Together with the team we have developed Automation system and MES system. The main job of Automation system is to control the whole process of manufacturing a product. I have added some functions to the system and I have also enhanced its efficiency. As for MES system, main function is to schedule the next task for every machine, I have been responsible for providing necessary maintenance and improving the overall performance of the MES system In 2019, I transferred to Data Science team of IT department. Since I had the previous experience of manufacturing, I started using data from factories to perform data mining, data analysis as well as modeling based on machine learning. One of the projects that I have led from the very beginning aimed to use the power of the AI to do visual inspection: before we provide a solution to an operation site, a factory machine operators can use AOI (Automated Optical Inspection) machine to detect any defects of the product. Our goal is to aid the operation site to perform more efficiently by providing a more accurate way of inspection than the typical AOI machine, it also helps to run this operation without extra workforce. with the help of this project, I can work with other company's team smoothly, and we have started using the scrum master development to trace each member's progress, as a result, we deliver the most suitable solution to the operation site successfully. One of the achievements of this project has been the reduction of the overkill rate from 20% to 6.7%.

作品 Portfolio

Paragraph image 01 00@2x

Captcha Image Recognition through CNN

Tensorflow back-end, design a CNN model to recognize the captcha images.

Development tools : Pycharm

Libraries : Tensorflow, Pandas, Numpy, CaptchaImage...etc.

View on Github

Resume
Profile
Profile 00 00@2x

Abo Lei

@Jabil Corp. Data science team, Data scientist

Has strong computer vision background, by using data scientific tools to analyze data, make data speak, applied AI-based cosmetic inspection solution to manufacturing shop-floor.

Have more than a 4-year experience in system development and software design

Interest in cutting-edge technology, especially the term of AI, have a own project of Deep Learning.

Good at self-learning, Desire to recognize the real world through Data.

Data Scientist

Taichung,TW

Birth : 1994.03.08
Email : [email protected]

技能 Skills


 Programming

  • C#
    • Socket
    • WInForm
    • Thread
    • I/O
    • WinAPI
    • Visual Studio
  • IDE
    • Visual Studio
    • Visual Studio Code

AI

  • Python
    • Tensorflow
    • Keras
    • NumPy
    • Pandas
    • Matplotlib
  • Azure
    • DevOps
    • Machine Learning Service
    • Storage Explorer
    • Batch service
    • Data Factory
  • Tools
    • Jupyter Notebok
    • PyCharm
    • Visual Studio code

Version control

  • Git
  • SVN
  • Azure DevOps Repo

知識 Knowledge


Languages

  • Chinese - Mandarin
    • Native language
  • Chinese - Taiwanese
    • Native language
  • English
    • Medium
    • TOEIC 670

Architecture

Design robust, maintainability, readable software architecture.

  • Coding standard
  • DocFx
  • StyleCop
  • Efficiency Design
  • Maintainability Design
  • Robust
  • Infrastructure Design

Team work

Conversation with team members, cutting-edge technology sharing,

  • Technical Sharing
  • Microsoft To-Do
  • Microsoft Teams
  • Trello
  • Azure DevOps Boards
  • Github

Computer science

  • Data structure
  • Operation System
  • Algorithm


工作經歷 Work experience

Jabil Corp. - Data Scientist, 2019 Sep - Now

Jabil (NYSE: JBL) is a manufacturing solutions provider that delivers comprehensive design, manufacturing, supply chain and product management services. Leveraging the power of over 200,000 people across 100 sites strategically located around the world.


Responsibilities : 

 1. Using modern deep learning tools to perform cosmetic defect detection.

 2. Data visualization, make data speak to help factory to make decisions.

 3. Leading-in infrastructure concepts. 

 4. Design/Develop a infrastructure for scrum development. 

 5. Design/Develop automation control system with C#/C++. 

 6. Team work with external corporations in AI projects.


  • Improve inspection efficiency by collecting data from the shopfloor. 
  • Analyze data to help improve the system or inspect whether the demands from business side is doable. 
  • Do researches for new ML models (recommender model, NLP model) or architectures which are suitable for the system. 
  • Key Projects: 
    • AI-based real-time Optical Inspection System 
      • Objective: 
        • Improve Inspection accuracy of AOI system by collecting data from manufacturing machine. 
        • Reduce the requirement of intensive workforce for cosmetic inspection.
      • Responsibilities: 
        • Play as the key role in design and development the end-to-end AI-based solution. 
        • Make sure the images/data are being collected from AOI is in correct format every single day. 
        • Analysis 325 GB images/data from shopfloor every single day. 
        • High resolution image (10,000-pixel by ~7,000-pixel) AI-based cosmetic inspection. 
        • Cooperate with Microsoft data science team to brainstorm the better solution. 
        • Build ML model to predict each product to see if there is any defect on the product. 
        • Use Azure Machine Learning Workspace to train/evaluate the model.
      • Achievements: 
        • Reduce the overkill rate from 20% to 6.3%. 
        • Build up the end-to-end deployment through Azure DevOps pipeline. 
        • Deliver the AI-based solution to shopfloor.
      • Tools: 
        • Tensorflow (Keras): 
          • Transform data into tensor object. - Build LeNet model. 
          • Build Variational Auto-Encoder model. 
          • Transfer learning from trained Efficient-Net. 
          • Record metrics for trace the training process. 
          • Save trained model weights for prediction. 
      • Scikit-Learn: 
        • Training set and testing set split. 
        • Computing metrics (e.g., confusion matrix, ROC curve, AUC, recall…etc.)
      • OpenCV: 
        • Image preprocessing (e.g., find contours, fit rectangle, rotate, color masking…etc.) 
      • Scikit-Image: 
        • Find shifted x, y based on golden image. 
        • Register translated images. 
        • Image I/O: read image and save image. 
      • Numpy: 
        • Crop image with certain ROIs. 
        • Numpy object mathematic batch computing. 
      • Tensorboard: 
        • Visualize the metrics from the whole training process. 
      • Matplot/Plotly: 
        • Data visualization (e.g., line chart, pie chart, scatters, confusion matrix…etc.). 
      • Imgaug: 
        • Enlarge data set by using image augmentation. 
      • Pandas: 
        • Manipulate data as table-liked object. 
        • Read/write csv. 
      • Docker: 
        • Containerize .NET core micro services written by .NET C#. 
        • Build docker compose to orchestrate micro services. 
      • Azure DevOps: 
        • Version control for codes by using Azure Git Repo. 
        • Merge branches to master branch. 
        • Working items (user story/task/bug) assignment, update by using Azure Board. 
        • Design pipeline for auto-unit test and auto-deployment when there is any update of codes by Azure Pipeline. 
        • Trigger auto-retrain pipeline for ML model when there is any update of ML-related codes. 
      • Azure: 
        • Data transfer from shopfloor by using Azure Data Factory. 
        • Data storage by using Azure blob storage. 
        • Train/evaluate ML model by using Azure Machine Learning Workspace. 
      • RabbitMQ: 
        • Message queue architecture to build asynchronous API call.
        • Design topology of message queue (e.g., fan-out, multiple binding, subscribing…etc.)

Company@2x

Jabil Corp. - Programmer Analyst, 2017 Feb - 2019 Sep

Improve the efficiency of making products in the shopfloor.  

  • Key Projects: 
    •  Infrastructure (Common library) 
      • Achievements: Boost the development time more than 10% faster. 
      • Tools: .NET C# 
    •  AGV (Automated guided vehicle) System 
      • Achievements: Reduce the 10% workforce requirement in the shift. 
      • Tools: .NET C#
    • ◼ Automation System
      • Achievements: Integrate the AGV system with automation system. 
      • Tools: Code-gear C++
    • ◼ MES (Manufacturing execution system) System 
      • Achievements: Operator in the shopfloor can scan face to enter the MES system. 
      • Tools: Code-gear C++

Company@2x

Innolux Corp. - Computer vision Intern, 2015 June - 2016 July

As a leading TFT-LCD panel supplier, Innolux has been deeply engaged in the research and development of TFT-LCD technology and production with its abundant innovative energy and insistence on high quality. Specialized in manufacturing TFT-LCD panel.  

  • Key Projects: 
    • Color tag categorization 
    • Objective: 
      • To distinguish different color of tags on the LCD panel. 
      • Reduce the requirement of labor in the shopfloor to categorize the tag on the panel. 
    • Responsibilities: 
      • Develop a function integrate with AOI system to categorize the color on the LCD panel. 
    • Achievements: 
      • The function can 100% categorize different color tags. 
      • Replace the human color-check station in the shopfloor by the system. 
    • Tools: 
      • .NET C#: Design the algorithm to identify the color of the tag.

Company@2x

學歷和其他經歷 Education and misc experience

AI Academy - Trainee, 2019 June - 2019 Sep

Experience : 

 1. Training AI technology/knowledge every Saturday. 

 2. Cutting-edge algorithm introduction. 

 3. Build up data science fundamental knowledge.

Company@2x

CSIE. - Southern Taiwan university of science and technology, 2012 Sep - 2016 June

Learning : 

 1. Operation systems 

 2. Data structure 

 3. Linear algebra 

 4. Discrete mathematics 

 5. Engineering mathematics 

 6. Software languages : C#/C++/Python/Java/Java script...etc.

Company@2x

自傳 Autobiography

 I have more than a 4-year experience in system development and software design (Automation system, MES system, Machine vision, Data science, System refactoring, software architecture design), and I am also passionate about discovering cutting-edge technology in order to see if it can help a company develop more efficiently. I have been professionally using C++ and SQL database for 3 years. Together with the team we have developed Automation system and MES system. The main job of Automation system is to control the whole process of manufacturing a product. I have added some functions to the system and I have also enhanced its efficiency. As for MES system, main function is to schedule the next task for every machine, I have been responsible for providing necessary maintenance and improving the overall performance of the MES system In 2019, I transferred to Data Science team of IT department. Since I had the previous experience of manufacturing, I started using data from factories to perform data mining, data analysis as well as modeling based on machine learning. One of the projects that I have led from the very beginning aimed to use the power of the AI to do visual inspection: before we provide a solution to an operation site, a factory machine operators can use AOI (Automated Optical Inspection) machine to detect any defects of the product. Our goal is to aid the operation site to perform more efficiently by providing a more accurate way of inspection than the typical AOI machine, it also helps to run this operation without extra workforce. with the help of this project, I can work with other company's team smoothly, and we have started using the scrum master development to trace each member's progress, as a result, we deliver the most suitable solution to the operation site successfully. One of the achievements of this project has been the reduction of the overkill rate from 20% to 6.7%.

作品 Portfolio

Paragraph image 01 00@2x

Captcha Image Recognition through CNN

Tensorflow back-end, design a CNN model to recognize the captcha images.

Development tools : Pycharm

Libraries : Tensorflow, Pandas, Numpy, CaptchaImage...etc.

View on Github