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4 到 6 年
6 到 10 年
10 到 15 年
15 年以上
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曾任
Founder @Bountystash
2020 ~ 现在
Asset Manager, Full-stack
一個月內
Word
Excel
Cost Analysis
待业中
目前会考虑了解新的机会
全职 / 对远端工作有兴趣
4 到 6 年
Albert-Ludwigs-Universität Freiburg im Breisgau
Renewable Energy Management
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程式設計師 @寶碩財務科技股份有限公司
2023 ~ 2023
軟體工程師
半年內
C#
Entity Framework
ASP.NET Core
就职中
全职 / 对远端工作有兴趣
15 年以上
私立南華大學
資訊工程學系
Avatar of 郭佳榮.
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交付顧問 @德勤太平洋企業管理咨詢有限公司
2021 ~ 现在
Software engineer
一個月內
Zack Guo Zack is a Delivery Consultant in Deloitte Consulting A&C. He is experience in ETL architecture design, stored procedure development, report design and procedure performance tuning. 5+ years of custom ETL experience with SS&C's Algorithmics and Moody's RiskAuthority. 1+ year of SAP DWC ETL construction expericence in manufacturing and food industries. 1+ year of IFRS17 related data report development experience. Delivery Consultant Taipei, [email protected] Skills C++, Matlab, Python, PL SQL, PostgreSQL, MS SQL, ETL stored procedure, Shell Script, Crystal Reports, Datastage
Python
Matlab
PL/SQL
就职中
全职 / 对远端工作有兴趣
4 到 6 年
國立新竹教育大學
應用數學研究所
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Engineer @Palomar Scientific Instruments
Hardware Engineer
超過一年
for quick product development. Schematic capture, PCB layout, and Gerber generation using Altium Designer of custom boards for both high and low speeds applications. Develop testing and troubleshooting procedures for new products. Test products before being shipped out. Use a combination of C/C++, MatLab, Tcl/Tk, I2C to develop firmware for microprocessors. Responsible for the product's complete life-cycle from statements of work to product delivery. Use C/C++ within the Qt environment to develop software for graphical or terminal end-user interaction. Create
VHDL
Altium Designer
Xilinx
全职 / 对远端工作有兴趣
4 到 6 年
CSUSM
Applied Physics

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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。
变通能力
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
具有向心力与团队责任感,愿意倾听他人意见并主动沟通协调。
领导力
专注于团队发展,有效引领团队采取行动,达成共同目标。
一年內
Software Engineer
THLight
2020 ~ 现在
New Taipei City, 台灣
专业背景
目前状态
就职中
求职阶段
专业
数据科学家
产业
软件
工作年资
2 到 4 年
管理经历
技能
Tensorflow
python
keras
R
C
C++
语言能力
English
进阶
求职偏好
希望获得的职位
Software Engineer
预期工作模式
全职
期望的工作地点
台灣台北
远端工作意愿
暂不考虑远端工作
接案服务
学历
学校
National Chiao Tung University
主修科系
Master's degree Industrial Engineering and Management
列印

Tseng Po-Yen

  Email: [email protected]

  Mobile: 0955039451

  Home: Sanchong Dist., New Taipei City, Taiwan

SUMMARY:

  • 3+ years of designing machine learning and deep learning models for multiple applications, such as automated optical inspection, indoor positioning of IOT data, and object detection.
  • Proficient with python, TensorFlow and PyTorch.
  • The performance of automated optical inspection by energy-based models achieved 0.814 (base: 0.643), F1 score: 0.691.
  • The performance of indoor positioning achieved about 0.99 (the version used in the past about 0.93).
  • The product including object detection and license plate recognition model is sold to Environmental Protection Department, New Taipei City Government
  • Self-starter, fast learner, and a team player.

SKILLS

Programming


  • python
  • R
  • C, C++
  • Matlab
  • Vue

Framework


  • TensorFlow
  • PyTorch
  • Keras

Tools


  • MySQL
  • Git
  • Docker
  • K8s

Work Experience

Apr 2021 - Nov 2021


Software Engineer, Mitac Information Corporation

Main Work:

1. The New Taipei City Government has stepped up efforts to ban littering used by object detection models.

2. The National Science and Technology Center for Disaster Reduction needs to forecast river water levels and prevent flooding via IOT sensor data. 


Others:
1. Develop POS machine by Vue, and design shop system in weekend.

2. Design a shopping website, including product list, shopping cart, member registration, administrator and so on.



Feb 2020 - Apr 2021

Software Engineer, THLight

Main Work:
1. Instead of using triangulation, use a machine learning model to determine the threshold of RSSI which is always unstable.
2. Upgrade the TF1 to TF2, and improve model accuracy in lots of cases: just mention a few-Mackay Memorial Hospital(馬偕), BMW, Leaspy(宇博), Hannstar(瀚宇彩晶) and etc.
3. Conduct experiments and write tests for new products, for beacons transmitted by BLE.
4. System maintenance and repair

Other research:
1. For the purpose of improving the accuracy of positioning, search the object detection algorithms.
2. Demo Raspberry Pi 4 with Google Coral Accelerator and run related object detection models on the device

Sep 2018 - Feb 2020


Data Scientist,  Coretronic Corporation

Main Work:
1. Worked on automated optical inspection of panels and light guide plates, and helped factories to reduce labor costs.
2. Used Energy-based models to achieve automatic detection finding the defect in panels.
3. Then, determined the threshold by OpenCV
4. Moreover, Semi-Supervised learning can help to define what the defect is, this ability resembles the cognition of human operators, and the concept of out-of-distribution may be a good way to determine the threshold.
5. With the light guide plates, the results of the algorithm at the beginning of the cutting tests: accuracy 0.814 (base: 0.643), F1 score: 0.691
6. Applying for a patent for the above-mentioned algorithm

Others:
1. Trained deep learning models on GPUs efficiently, and built docker files for personal projects in order to create an isolated environment which would not interfere with other people’s projects.
2. Built an automatic daily mail system for reporting the data of production from the factory and the conditions of the machinery and equipment in the factory.

EDUCATION

2016 - 2018

National Chiao Tung University

Master's degree in Industrial Engineering and Management

Thesis: ECG Classification with Siamese Network

Sarcasm Detection through Word2vec and Convolutional Neural Network (Published on The 26th South Taiwan Statistics Conference)

On Feature Combination for Sentiment Classification (Contributed to IEEE Intelligent Systems)

ECG Classification with Convolutional Neural Networks (Accepted by 2018 GCEAS Global Conference on Engineering and Applied Science)

2012 - 2016

National Taipei University

Bachelor's degree in Electrical and Electronics Engineering

Leveraging Text Mining and Sentiment Analysis to Increase Vehicle Sales

Autobiography

My name is Tseng Po-Yen, majored in electrical and electronics engineering in National Taipei University and the department of industrial engineering and management in National Chiao Tung University. I devoted to crawling and sentiment analyzing when I was in college, and delved into deep learning in ECG classification.  In addition to studies, I participated in volleyball team and sometimes did sports on the weekend.

When worked in Coretronic, I was responsible for automated optical inspection of panels and light guide plates and achieved accuracy 0.814 (F1 score 0.691). Last, the above-mentioned algorithm applied for patent. Next, I dedicated in indoor positioning using deep learning in THLight. This model can get test accuracy about 0.99 in lots of cases better than the past model (test accuracy about 0.93). Now, I design inference server and takes some cases in Mitac. Beside training model, I also try to use docker and K8s to deploy edge computer. Last, apart from work, I also joined a club Deep Learning 101, and had a speech on VQVAE.


简历
个人档案

Tseng Po-Yen

  Email: [email protected]

  Mobile: 0955039451

  Home: Sanchong Dist., New Taipei City, Taiwan

SUMMARY:

  • 3+ years of designing machine learning and deep learning models for multiple applications, such as automated optical inspection, indoor positioning of IOT data, and object detection.
  • Proficient with python, TensorFlow and PyTorch.
  • The performance of automated optical inspection by energy-based models achieved 0.814 (base: 0.643), F1 score: 0.691.
  • The performance of indoor positioning achieved about 0.99 (the version used in the past about 0.93).
  • The product including object detection and license plate recognition model is sold to Environmental Protection Department, New Taipei City Government
  • Self-starter, fast learner, and a team player.

SKILLS

Programming


  • python
  • R
  • C, C++
  • Matlab
  • Vue

Framework


  • TensorFlow
  • PyTorch
  • Keras

Tools


  • MySQL
  • Git
  • Docker
  • K8s

Work Experience

Apr 2021 - Nov 2021


Software Engineer, Mitac Information Corporation

Main Work:

1. The New Taipei City Government has stepped up efforts to ban littering used by object detection models.

2. The National Science and Technology Center for Disaster Reduction needs to forecast river water levels and prevent flooding via IOT sensor data. 


Others:
1. Develop POS machine by Vue, and design shop system in weekend.

2. Design a shopping website, including product list, shopping cart, member registration, administrator and so on.



Feb 2020 - Apr 2021

Software Engineer, THLight

Main Work:
1. Instead of using triangulation, use a machine learning model to determine the threshold of RSSI which is always unstable.
2. Upgrade the TF1 to TF2, and improve model accuracy in lots of cases: just mention a few-Mackay Memorial Hospital(馬偕), BMW, Leaspy(宇博), Hannstar(瀚宇彩晶) and etc.
3. Conduct experiments and write tests for new products, for beacons transmitted by BLE.
4. System maintenance and repair

Other research:
1. For the purpose of improving the accuracy of positioning, search the object detection algorithms.
2. Demo Raspberry Pi 4 with Google Coral Accelerator and run related object detection models on the device

Sep 2018 - Feb 2020


Data Scientist,  Coretronic Corporation

Main Work:
1. Worked on automated optical inspection of panels and light guide plates, and helped factories to reduce labor costs.
2. Used Energy-based models to achieve automatic detection finding the defect in panels.
3. Then, determined the threshold by OpenCV
4. Moreover, Semi-Supervised learning can help to define what the defect is, this ability resembles the cognition of human operators, and the concept of out-of-distribution may be a good way to determine the threshold.
5. With the light guide plates, the results of the algorithm at the beginning of the cutting tests: accuracy 0.814 (base: 0.643), F1 score: 0.691
6. Applying for a patent for the above-mentioned algorithm

Others:
1. Trained deep learning models on GPUs efficiently, and built docker files for personal projects in order to create an isolated environment which would not interfere with other people’s projects.
2. Built an automatic daily mail system for reporting the data of production from the factory and the conditions of the machinery and equipment in the factory.

EDUCATION

2016 - 2018

National Chiao Tung University

Master's degree in Industrial Engineering and Management

Thesis: ECG Classification with Siamese Network

Sarcasm Detection through Word2vec and Convolutional Neural Network (Published on The 26th South Taiwan Statistics Conference)

On Feature Combination for Sentiment Classification (Contributed to IEEE Intelligent Systems)

ECG Classification with Convolutional Neural Networks (Accepted by 2018 GCEAS Global Conference on Engineering and Applied Science)

2012 - 2016

National Taipei University

Bachelor's degree in Electrical and Electronics Engineering

Leveraging Text Mining and Sentiment Analysis to Increase Vehicle Sales

Autobiography

My name is Tseng Po-Yen, majored in electrical and electronics engineering in National Taipei University and the department of industrial engineering and management in National Chiao Tung University. I devoted to crawling and sentiment analyzing when I was in college, and delved into deep learning in ECG classification.  In addition to studies, I participated in volleyball team and sometimes did sports on the weekend.

When worked in Coretronic, I was responsible for automated optical inspection of panels and light guide plates and achieved accuracy 0.814 (F1 score 0.691). Last, the above-mentioned algorithm applied for patent. Next, I dedicated in indoor positioning using deep learning in THLight. This model can get test accuracy about 0.99 in lots of cases better than the past model (test accuracy about 0.93). Now, I design inference server and takes some cases in Mitac. Beside training model, I also try to use docker and K8s to deploy edge computer. Last, apart from work, I also joined a club Deep Learning 101, and had a speech on VQVAE.