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4-6 years
6-10 years
10-15 years
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Avatar of Alex Yu.
Avatar of Alex Yu.
Product Manager @Linker Vision
2023 ~ Present
PM/產品經理/專案管理
Within one month
relationship maintenance 24 Merchants, 6 IPs. NFT generation and 3D modeling Web 3.0, Metaverse, NFT-related consultant. OctFeb 2021 Project Engineer Acer Studying cutting-edge AI/DL skills to implement on a medical AI project. 92% accuracy on glaucoma CDR detection. Familiar with object detection, segmentation, and classification AI scenario. Good communication skills with doctors' demands and collaboration with colleagues. Patent Disclosure: Ultrasound detect and notify system. (serial number: I學歷 SepJun 2 National Taiwan University of Science and Technology Masters in Electrical Engineering Thesis "Online Data Stream Analytics
Business Development
Deep Learning
PYTHON
Employed
Open to opportunities
Full-time / Interested in working remotely
4-6 years
國立台灣科技大學 National Taiwan University of Science and Technology
電機工程
Avatar of the user.
Avatar of the user.
Team Lead @工業技術研究院
2020 ~ Present
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
C++
Python
Deep Learning
Employed
Open to opportunities
Full-time / Interested in working remotely
6-10 years
National Chung Cheng University
資訊工程學所
Avatar of 金爾康.
Avatar of 金爾康.
Engineering Manager @Viscovery 創意引晴股份有限公司
2018 ~ Present
Within one month
Research Experience Research Assistant, Seppresent Communication and Multimedia Lab (CMLab), NTU Proposed a Convolutional Neural Network (CNN) accurately performing fine-grained classification for surveillance car. The model recovered lost details from low resolution image with hints in crawled web images. Leveraged frame similarity to speed up CNN-based object detection and semantic segmentation models, e.g. FPN, PSPNet, YOLO, Faster-RCNN, and SegNet. Proposed a multimodal CNN achieving high fine-grained classification accuracy. The model was trained with both web images and its tags, and could predict solely with image in future testing phase
Deep Learning
Computer Vision
FastAPI
Employed
Open to opportunities
Full-time / Interested in working remotely
4-6 years
國立台灣大學
Electrical Engineering
Avatar of Tsung Hsien Chen.
Avatar of Tsung Hsien Chen.
技術長(CTO) @雅匠科技股份有限公司
2019 ~ 2022
CTO、Sr.Software Manager、Sr.Software Engineer
Within one month
限公司 Java/ Kotlin/ python/ Flutter/ Docker/ Django/ FastAPI/ MySQL/ AWS/ GCP/ OpenCV - Direct management of about 5 to 8. - Mobile app development about AR, temperature/co2 monitoring, beacon parking-related app, etc. - Computer vision for object detection, hand tracking, hair segmentation, and virtual makeup with python language using OpenCV and other open-source. - The assessment of new technology to import and manage engineers' working flow. - Web API development for mobile or Web, and deploy with Docker container on a cloud server or local
Python
Java
Dart(Flutter)
Employed
Full-time / Remote Only
4-6 years
ISU University
電機工程學系
Avatar of the user.
Avatar of the user.
資深經理 @緯創資通
2021 ~ Present
Technical Manager
Within six months
Research
Unsupervised Learning
Computer Science
Employed
Full-time / Interested in working remotely
10-15 years
National Taiwan University of Science and Technology
Master's degree Computer Science and Information Engineering
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
用 6 種不同 CNN model 搭配 5 種 data augmentation 並且 fine-tune model,達到 93 % Accuracy 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
Airflow
Docker
AWS
Employed
Open to opportunities
Full-time / Interested in working remotely
4-6 years
清華大學
動力機械工程學系
Avatar of 陳惠龍.
Avatar of 陳惠龍.
Data science lecturer @Ittraining
2020 ~ Present
Data Scientist 資料科學家_數據分析師
Within one month
Detection: Detect Player Contacts from Sensor and Video Data, 2023/03/03 AIGC (生成式AI): - Bronze medal (solo): (Kaggle) Stable Diffusion - Image to Prompts: Deduce the prompts that generated our "highly detailed, sharp focus, illustration, 3d renders of majestic, epic" images, 2023/05/16 Object detection (目標檢測): - 4th place (solo): (Aidea AI CUP) 肺腺癌病理切片影像之腫瘤氣道擴散偵測競賽 I:運用物體偵測作法於找尋STAS, 2022/06/02
nlp-rasa
recommender system
pytorch tensorflow
Employed
Open to opportunities
Part-time / Interested in working remotely
More than 15 years
Purdue University
School of civil engineering (Stochastic & statistical hydrology)
Avatar of the user.
Avatar of the user.
Senior Backend Engineer/Machine Learning Engineer @Calyx Inc.
2022 ~ Present
後端工程師/系統架構師/機器學習工程師
Within one month
Fortran
JavaScript
vue.js
Employed
Open to opportunities
Full-time / Interested in working remotely
6-10 years
國立臺灣師範大學
地球科學/大氣組
Avatar of Crystal Chang.
Avatar of Crystal Chang.
Marketing Specialist @TradeUP Securities
2021 ~ Present
Marketing Specialist
Within one month
ensuring the timely recording and distribution of clients' rewards. •Drafted, proofread, designed, and distributed both internal and external communications. This included visually compelling Google Display Ads, press releases, engaging blog posts, and posts across multiple social media platforms. •Maximized the use of the CRM system for customer segmentation and targeted marketing. •Coordinated promotional items for prospects and customers, leveraging digital platforms to achieve a wider reach and impact. •Engaged with internal teams to optimize procedures and campaigns that fueled growth marketing initiatives. •Collaborated closely with product and engineering teams to implement strategies aimed at
Digital Marketing
Employed
Open to opportunities
Full-time / Remote Only
6-10 years
William Paterson University of New Jersey
Marketing/Marketing Management, General
Avatar of 張致瑋.
BI/DATA Engineer
Within one month
learning input/output and BI features. Foxconn, Senior Data Engineer, OctDec 2018 Collect customer data from various channels and extract valuable information to build ad recommendation models Experience with ETL flow design and develop: ETL between Hadoop and RDB Cleaning TV logs to analyze customer behavior and building key metrics to analyze Construct data flow to manage big data ingestion from upstream application to Hadoop Distributed File System Building data warehouse from scratch and using Hadoop, Hive, Impala, Python to solving data process issue Taiwan Star, Senior BI Developer , AugSep 2017 Implemented customer segmentation an...
SQL
my-sql
ETL
Full-time / Interested in working remotely
6-10 years

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Within six months
Technical Manager
緯創資通
2021 ~ Present
Taipei, Taiwan
Professional Background
Current status
Employed
Job Search Progress
Professions
Machine Learning Engineer, Data Scientist, Technical Manager
Fields of Employment
Work experience
10-15 years
Management
I've had experience in managing 1-5 people
Skills
Research
Unsupervised Learning
Computer Science
Python
PyTorch
Tensorflow (Keras)
Docker
Object Detection
Object classification
Image Segmentation
Languages
Chinese
Native or Bilingual
English
Fluent
Job search preferences
Positions
Technical Manager
Job types
Full-time
Locations
Taipei, 台灣, New Taipei City, 台灣, Taoyuan, 桃園區桃園市台灣, 台灣新竹市新竹, 台灣台北, 台灣台中市北區台中, 台灣台南
Remote
Interested in working remotely
Freelance
Yes, I freelance in my spare time
Educations
School
National Taiwan University of Science and Technology
Major
Master's degree Computer Science and Information Engineering
Print

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 Technology - Master of Information Engineering

Experience:
2010 Wistron - Software Engineer
2015 Wistron - ML/DL Image Processing Engineer
2019 Wistron - Technical Manager
2020 MIT - Computer Science and Artificial Intelligence Laboratory (CSAIL) Visiting Engineer

Competition:
2016 Ministry of Economic Affairs Bureau of Industry – Mastering the Data Context Hackathon Competition, Data Marketing Award
2017 Kaggle: The Nature Conservancy Fisheries Monitoring – bronze medal <6%
2018 Wistron Capital Entrepreneurship Competition 3rd place - Baby Guardian

In 2020, I was fortunate to be a Visiting Engineer at Massachusetts Institute of Technology-Computer Science & Artificial Intelligence Laboratory for six months, to research new technologies.

I am a person who is eager to challenge and learn new technologies. In my spare time, I often follow the latest papers, technical documents, and even online competitions. I look forward to applying AI in more places in the future.

  Taipei, Taiwan  

Working Experience

Senior Manager  •  Wistron

七月 2021 - Present

I switched to a managerial role, managing four employees, and the original job turned into planning, task assignment, technical survey, and also included:
1. Employee performance management.
2. Employee functional development planning.
3. Hold an AI patent conference.
4. Conceive the application of MIT new technology.
5. Research MLOPS

Technical Senior Manager  •  Wistron

九月 2020 - 七月 2021


I'm currently leading a group and working on image processing and deep learning, here's a brief introduction:
1. Detecting small objects in High-resolution images: we use deep learning to identify small eggs on High-resolution images:
-This project is from a government unit used to quickly screen/count dengue eggs.
- The work content includes the design and development of image modules and back-end APIs, as well as Docker.
- 10x increase in efficiency (10 minutes vs 1 minute)
- Average error rate 15% lower than Linker (MAPE: 15% vs 25%)

2. Image identification on a fast screening reagent:
-This project comes from the first few Japanese customers who produce rapid screening reagents. The customer needs a machine to automatically identify positive or negative.
-Designed an algorithm that can identify whether the result of disease detection on the embedded computer is positive or negative.
-Because the LED color temperature and the placement of the Camera of each device will be different. A method of using software to correct the image on the device is designed.

As image processing/deep learning Group Leader, new features development, host the weekly group meeting regularly and trouble Shooting, coordinated member’s task.

MIT - Visiting Researcher   •  Wistron

二月 2020 - 九月 2020


In 2020, I was fortunate to be a Visiting Engineer at MIT for eight months, I focus on the following topics with MIT professor:
1. Unsupervised learning algorithm
-Voxel morph algorithm.
-Application of supervised and unsupervised learning in the image detection of defective components in the factory.

2. Discussion on the processing of incorrectly marked data
-Use Confidenct Learning to remove incorrectly marked data.
-Use Co-teching to reinforce training results
- This method defeated the previous algorithm, the lowest leak dropped from 1.2 to 0.7

3. Host meetings between MIT and internal members of the company.

AI/DL Engineer  •  Wistron

九月 2015 - 二月 2020

During this time, I participated in the following projects related to image processing/deep learning:
1. Liver/tumor semantic segmentation network:
- Cooperate with a hospital to develop a liver disease recognition system (has been exhibited in Nangang Exhibition Hall)
-Using a 3D semantic segmentation network to identify five different disease areas
-Processing various medical image formats (DICOM, NII)

2. As a team leader, I participated in the company's Golden Mind competition, and the baby camera project won the third place.
-Develop an image classification system on Raspberry pie.
-Learn the division of labor and cooperation on AIOT and the thinking model of start a business.

3. Improving the neural network for the face recognition system.
-The original team used openface, without major adjustments to the architecture, using fine-turning technology to allow the Network to fit smaller groups of datasets

I participated in the Golden Mind competition organized by the company as a team leader. The proposal of baby camera won the third place. I learned the AIOT division of labor and entrepreneurship mode.

Senior Software Engineer  •  Wistron

九月 2010 - 九月 2015

Mainly engaged in front-end and back-end development of the website, making front-end and back-end supporting software for the company's products, the main works are:
1. Front-end and back-end software development
2. Android software development

Education

2008 - 2010

National Taiwan University of Science and Technology

Master's degree Computer Science and Information Engineering

2004 - 2008

Ming Chuan University

Department of Computer and Communication Engineering

技能


  • Research
  • Unsupervised Learning
  • Computer Science
  • Python
  • PyTorch
  • Tensorflow (Keras)
  • Docker
  • Object Detection
  • Object classification
  • Image Segmentation

語言


  • Chinese — 母語或雙語
  • English — 進階
Resume
Profile

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 Technology - Master of Information Engineering

Experience:
2010 Wistron - Software Engineer
2015 Wistron - ML/DL Image Processing Engineer
2019 Wistron - Technical Manager
2020 MIT - Computer Science and Artificial Intelligence Laboratory (CSAIL) Visiting Engineer

Competition:
2016 Ministry of Economic Affairs Bureau of Industry – Mastering the Data Context Hackathon Competition, Data Marketing Award
2017 Kaggle: The Nature Conservancy Fisheries Monitoring – bronze medal <6%
2018 Wistron Capital Entrepreneurship Competition 3rd place - Baby Guardian

In 2020, I was fortunate to be a Visiting Engineer at Massachusetts Institute of Technology-Computer Science & Artificial Intelligence Laboratory for six months, to research new technologies.

I am a person who is eager to challenge and learn new technologies. In my spare time, I often follow the latest papers, technical documents, and even online competitions. I look forward to applying AI in more places in the future.

  Taipei, Taiwan  

Working Experience

Senior Manager  •  Wistron

七月 2021 - Present

I switched to a managerial role, managing four employees, and the original job turned into planning, task assignment, technical survey, and also included:
1. Employee performance management.
2. Employee functional development planning.
3. Hold an AI patent conference.
4. Conceive the application of MIT new technology.
5. Research MLOPS

Technical Senior Manager  •  Wistron

九月 2020 - 七月 2021


I'm currently leading a group and working on image processing and deep learning, here's a brief introduction:
1. Detecting small objects in High-resolution images: we use deep learning to identify small eggs on High-resolution images:
-This project is from a government unit used to quickly screen/count dengue eggs.
- The work content includes the design and development of image modules and back-end APIs, as well as Docker.
- 10x increase in efficiency (10 minutes vs 1 minute)
- Average error rate 15% lower than Linker (MAPE: 15% vs 25%)

2. Image identification on a fast screening reagent:
-This project comes from the first few Japanese customers who produce rapid screening reagents. The customer needs a machine to automatically identify positive or negative.
-Designed an algorithm that can identify whether the result of disease detection on the embedded computer is positive or negative.
-Because the LED color temperature and the placement of the Camera of each device will be different. A method of using software to correct the image on the device is designed.

As image processing/deep learning Group Leader, new features development, host the weekly group meeting regularly and trouble Shooting, coordinated member’s task.

MIT - Visiting Researcher   •  Wistron

二月 2020 - 九月 2020


In 2020, I was fortunate to be a Visiting Engineer at MIT for eight months, I focus on the following topics with MIT professor:
1. Unsupervised learning algorithm
-Voxel morph algorithm.
-Application of supervised and unsupervised learning in the image detection of defective components in the factory.

2. Discussion on the processing of incorrectly marked data
-Use Confidenct Learning to remove incorrectly marked data.
-Use Co-teching to reinforce training results
- This method defeated the previous algorithm, the lowest leak dropped from 1.2 to 0.7

3. Host meetings between MIT and internal members of the company.

AI/DL Engineer  •  Wistron

九月 2015 - 二月 2020

During this time, I participated in the following projects related to image processing/deep learning:
1. Liver/tumor semantic segmentation network:
- Cooperate with a hospital to develop a liver disease recognition system (has been exhibited in Nangang Exhibition Hall)
-Using a 3D semantic segmentation network to identify five different disease areas
-Processing various medical image formats (DICOM, NII)

2. As a team leader, I participated in the company's Golden Mind competition, and the baby camera project won the third place.
-Develop an image classification system on Raspberry pie.
-Learn the division of labor and cooperation on AIOT and the thinking model of start a business.

3. Improving the neural network for the face recognition system.
-The original team used openface, without major adjustments to the architecture, using fine-turning technology to allow the Network to fit smaller groups of datasets

I participated in the Golden Mind competition organized by the company as a team leader. The proposal of baby camera won the third place. I learned the AIOT division of labor and entrepreneurship mode.

Senior Software Engineer  •  Wistron

九月 2010 - 九月 2015

Mainly engaged in front-end and back-end development of the website, making front-end and back-end supporting software for the company's products, the main works are:
1. Front-end and back-end software development
2. Android software development

Education

2008 - 2010

National Taiwan University of Science and Technology

Master's degree Computer Science and Information Engineering

2004 - 2008

Ming Chuan University

Department of Computer and Communication Engineering

技能


  • Research
  • Unsupervised Learning
  • Computer Science
  • Python
  • PyTorch
  • Tensorflow (Keras)
  • Docker
  • Object Detection
  • Object classification
  • Image Segmentation

語言


  • Chinese — 母語或雙語
  • English — 進階