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Taichung City, Taiwan
Avatar of 施冠宇.
Avatar of 施冠宇.
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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清華大學
動力機械工程學系
Avatar of the user.
Avatar of the user.
Senior AI Research/Engineer (part-time) @NeuroBonic Inc.
2022 ~ 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
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4-6 years
National Yang Ming Chiao Tung University
Computer Science
Avatar of 林昭源 (Leo Lin).
Avatar of 林昭源 (Leo Lin).
資深經理 @緯創資通
2021 ~ Present
Technical Manager
Within three months
林昭源 (Leo Lin) 1. Two years of management experience. 2. More than 10 years of computer vision and deep learning/software architecture development experience. 3. Programming experience using python. 4. Good paper reading ability and practical ability 5. Familiar with computer vision, deep learning (CNN, Resnet, densnet, GAN), object detection (Yolo series, RCNN series), segmentation models (UNet, DensUNet). 6. Experience in semi-supervised or unsupervised learning (pesudo labeling, Voxmorph model). 7. Experience with Docker, Git, Jenkins DevOps. Education: National Taiwan University of Science and
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Unsupervised Learning
Computer Science
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10-15 years
National Taiwan University of Science and Technology
Master's degree Computer Science and Information Engineering

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國立台灣大學醫學工程學系生物醫學訊息分析實驗室
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台灣新竹市
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Print

陳聖恩 Shen-En Chen (Andrew Chen)

  Hsinchu, Hsinchu City, Taiwan  https://achen353.github.io/         

EDUCATION

Georgia Institute of Technology | Atlanta, GA

  • B.S. in Computer Science (Threads: Intelligence & Info Internetworking), GPA 3.96                                 August 2018 – May 2021
  • M.S. in Computer Science (Specialization: Machine Learning; BSMS program)                                        August 2021 – May 2022

SKILLS

  • Programming/Markup Languages:  Python, Java C++, C, HTML, CSS, JavaScript, LaTeX
  • Library & Frameworks: Numpy, Scipy, Pandas, scikit-learn, Tensorflow/Keras, PyTorch, OpenCV, React.js, Dash
  • Relevant Courses: Object-Oriented Design, Data Structures, Probability & Statistics, Algorithms, Database Systems, Computer Networking I, Computer Vision, Natural Language Processing, Machine Learning

EXPERIENCE

Medical Informatic Research and Genetic Elucidation Lab, National Taiwan University | Taiwan  

Summer Intern                                                                                                                                 May 2019 – August 2019

  • Built a facial recognition program using OpenCV and convolutional neural networks (CNNs).
  • Designed a machine learning classification model for 5 common lung tumor types using ensemble one-vs-one support vector machine (SVM) classifier.
  • Applied 3D residual convolutional neural networks, using Keras and scikit-learn, on augmented Lung Image Database Consortium image collection (LIDC-IDRI) to classify benign and malignant lung tumors and achieved an accuracy, sensitivity, and specificity of 97.23%, 95.54%, and 98.12%, respectively.

PROJECTS

Taiwanese Traffic Object Detection | Taiwan                                                                                       December 2020 – January 2021

Trained and fine-tuned Darknet YOLOv4 Tiny model on a custom object detection dataset for Taiwanese traffic.

  • Explored the capability of Darknet YOLOv4 Tiny by training and fine-tuning the model at different resolutions, learning rates, and momentum to build an object detection system specifically for Taiwanese traffic.
  • Achieved an 87.5% [email protected] at about 18 to 23 average FPS with Nvidia Tesla P100 GPU.

Proper Mask Wearing Detection and Alarm System | Taiwan                                                       December 2020 – January 2021

A face mask detector that can detect whether an individual wears a mask and if the mask is worn properly. 

  • Performed transfer learning on MobileNet V2 using Tensorflow/Keras, OpenCV, and Google Cloud Compute Engine.
  • Designed and deployed a real-time detection app for the mask detection model using Dash framework.

ITS-Chatbot v2 (Generative Model) | Atlanta, GA                                                                                August 2020 – December 2020

Continuation of the ITS-Chatbot project using a transformer-based model.

  • Implemented a test script that evaluates the model on Piazza questions using Exact Match and F1 scores as metrics.
  • Improved generated-answer selection with softmax confidence score calculation and thresholding.
  • Incorporated and tested a BERT QA model on existing chatbot architecture using the ktrain Python library.
  • Overhauled the model in a more object-oriented fashion that eased the subsequent implementation of the transformer-based document retriever.

ITS-Chatbot | Atlanta, GA                                                                                                                                      January 2020 – May 2020

A chatbot add-on that aims to support digital dialogs between students and all resources available for a course.

  • Built a data preprocessing pipeline for Piazza posts and comments using Spacy, NLTK and other Python libraries.
  • Integrated the data preprocessing pipeline with the document embedding script and chatbot interface.

LEADERSHIP

Data Science at Georgia Tech (DSGT, or Data Science at GT) | Atlanta, GA                                      October 2018 – April 2020

Content Creator (January 2019 – April 2020)

  • Incorporated Jupyter Notebook with presentations to build interactive data science workshops for more than 80 DSGT members on topics such as Support Vector Machine, Ensemble Methods, and Intro to Deep Learning.
  • Planned, with other organizing members, Hacklytics 2020 datathon and presented a workshop to over 50 students.
Resume
Profile

陳聖恩 Shen-En Chen (Andrew Chen)

  Hsinchu, Hsinchu City, Taiwan  https://achen353.github.io/         

EDUCATION

Georgia Institute of Technology | Atlanta, GA

  • B.S. in Computer Science (Threads: Intelligence & Info Internetworking), GPA 3.96                                 August 2018 – May 2021
  • M.S. in Computer Science (Specialization: Machine Learning; BSMS program)                                        August 2021 – May 2022

SKILLS

  • Programming/Markup Languages:  Python, Java C++, C, HTML, CSS, JavaScript, LaTeX
  • Library & Frameworks: Numpy, Scipy, Pandas, scikit-learn, Tensorflow/Keras, PyTorch, OpenCV, React.js, Dash
  • Relevant Courses: Object-Oriented Design, Data Structures, Probability & Statistics, Algorithms, Database Systems, Computer Networking I, Computer Vision, Natural Language Processing, Machine Learning

EXPERIENCE

Medical Informatic Research and Genetic Elucidation Lab, National Taiwan University | Taiwan  

Summer Intern                                                                                                                                 May 2019 – August 2019

  • Built a facial recognition program using OpenCV and convolutional neural networks (CNNs).
  • Designed a machine learning classification model for 5 common lung tumor types using ensemble one-vs-one support vector machine (SVM) classifier.
  • Applied 3D residual convolutional neural networks, using Keras and scikit-learn, on augmented Lung Image Database Consortium image collection (LIDC-IDRI) to classify benign and malignant lung tumors and achieved an accuracy, sensitivity, and specificity of 97.23%, 95.54%, and 98.12%, respectively.

PROJECTS

Taiwanese Traffic Object Detection | Taiwan                                                                                       December 2020 – January 2021

Trained and fine-tuned Darknet YOLOv4 Tiny model on a custom object detection dataset for Taiwanese traffic.

  • Explored the capability of Darknet YOLOv4 Tiny by training and fine-tuning the model at different resolutions, learning rates, and momentum to build an object detection system specifically for Taiwanese traffic.
  • Achieved an 87.5% [email protected] at about 18 to 23 average FPS with Nvidia Tesla P100 GPU.

Proper Mask Wearing Detection and Alarm System | Taiwan                                                       December 2020 – January 2021

A face mask detector that can detect whether an individual wears a mask and if the mask is worn properly. 

  • Performed transfer learning on MobileNet V2 using Tensorflow/Keras, OpenCV, and Google Cloud Compute Engine.
  • Designed and deployed a real-time detection app for the mask detection model using Dash framework.

ITS-Chatbot v2 (Generative Model) | Atlanta, GA                                                                                August 2020 – December 2020

Continuation of the ITS-Chatbot project using a transformer-based model.

  • Implemented a test script that evaluates the model on Piazza questions using Exact Match and F1 scores as metrics.
  • Improved generated-answer selection with softmax confidence score calculation and thresholding.
  • Incorporated and tested a BERT QA model on existing chatbot architecture using the ktrain Python library.
  • Overhauled the model in a more object-oriented fashion that eased the subsequent implementation of the transformer-based document retriever.

ITS-Chatbot | Atlanta, GA                                                                                                                                      January 2020 – May 2020

A chatbot add-on that aims to support digital dialogs between students and all resources available for a course.

  • Built a data preprocessing pipeline for Piazza posts and comments using Spacy, NLTK and other Python libraries.
  • Integrated the data preprocessing pipeline with the document embedding script and chatbot interface.

LEADERSHIP

Data Science at Georgia Tech (DSGT, or Data Science at GT) | Atlanta, GA                                      October 2018 – April 2020

Content Creator (January 2019 – April 2020)

  • Incorporated Jupyter Notebook with presentations to build interactive data science workshops for more than 80 DSGT members on topics such as Support Vector Machine, Ensemble Methods, and Intro to Deep Learning.
  • Planned, with other organizing members, Hacklytics 2020 datathon and presented a workshop to over 50 students.