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4-6 năm
6-10 năm
10-15 năm
Hơn 15 năm
Avatar of 王祥宇.
Avatar of 王祥宇.
Operation manager @佳揚國際企業有限公司
2018 ~ Hiện tại
Trong vòng một tháng
王祥宇 Email: [email protected] Phone:Tainan City, Taiwan 技能 Development Communication Management Skills Supply Chain Management Procurement and Sourcing English- TOEIC score 790 學歷 國立政治大學 法律學系 SepJun工作經歷 Operation manager • 佳揚國際企業有限公司/ JAI YANG CO., LTD 專營機汽車 、重型機車、船舶、割草機 、輪椅零件之外銷貿易公司 FebPresent 1. 開發陌生國外
Communication
Management Skills
Devlopment
Đã có việc làm
Sẵn sàng phỏng vấn
Full-time / Không quan tâm đến làm việc từ xa
4-6 năm
Languages International (Auckland, New Zealand)
Advanced English
Avatar of 正大代筆.
Avatar of 正大代筆.
教授 @國立政治大學
2000 ~ Hiện tại
研究人員、代筆寫作
Trong vòng một tháng
代筆團隊。 除學術文章、標案,我單位現在也承包新聞稿代寫與商業、募資計畫代筆的服務喔!請把握機會。 工作經歷 教授 • 國立政治大學 六月Present | Taipei, Taiwan Lorem ipsum dolor sit amet, consectetuer adipiscing elit, sed diam nonummy nibh euismod tincidunt ut laoreet dolore magna aliquam erat volutpat. 學歷 國立台灣政治大學 經濟學 •Lorem ipsum dolor sit amet, consectetuer
Word
Java
Canva
Đã có việc làm
Sẵn sàng phỏng vấn
Full-time / Chỉ làm việc từ xa
Hơn 15 năm
國立台灣政治大學
經濟學
Avatar of 宋浩茹 Ellie Sung.
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
Trong vòng một tháng
宋浩茹 Hao-Ru Sung| [email protected] | LinkedIn | GitHub A s a Research Assistant at Academia Sinica , specializing in Generative AI research and application. With 3 + years of experience in NLP a nd Machine Learning , along with 4+ years in Backend Development . Proficient at translating complex theories into practical applications. Skills Languages: Python, R, SQL, MATLAB, C, C#, JavaScript, Node.js Software & Tools: PyTorch, PyTorch Lightning, Tensorflow, Scikit-Learn, NLTK , GCP, Linux, SQL / NoSQ , Pandas, Hugging Face, Gradio, LangChain, Tensorflow, Keras, FastAPI, OpenCV, Airflow
Python
R
Natural Language Processing (NLP)
Đã có việc làm
Sẵn sàng phỏng vấn
Full-time / Quan tâm đến làm việc từ xa
4-6 năm
國立政治大學(National Chengchi University)
資訊科學系
Avatar of 洪健哲.
Avatar of 洪健哲.
Past
Senior Software Engineer @ThunderCore 閃電核心科技
2023 ~ 2023
Software Engineer
Trong vòng một tháng
Chien-Che Hung Taipei City, Taiwan || [email protected] Full Stack Developer | Blockchain Developer Work Experience Senior Software Engineer • ThunderCore MarchSep 2023 | Taipei, Taiwan TTWallet Backend Service Designed and implemented a service facilitating cross-chain bridging for web3 wallets, ensuring seamless integration with Multichain. Primary languages and tools used included Node.js, Nest.js, and ethers.js. Designed and implemented a real-time, cross-language, and cross-timezone push notification system. Additionally, developed an internal API empowering the operations team to send custom push notification requirements. TTFarm | GameFi project on the
JavaScript Frameworks
Node.js
React.js/Redux
Thất nghiệp
Sẵn sàng phỏng vấn
Full-time / Quan tâm đến làm việc từ xa
4-6 năm
國立政治大學
Computer Science
Avatar of the user.
Avatar of the user.
Past
設計 @鳳嬌催化室 Fenko Catalysis Chamber
2019 ~ 2023
Garphic Designer / Space Planner / Visual Designer
Trong vòng hai tháng
Photoshop
Illustrator
Lightroom
Thất nghiệp
Sẵn sàng phỏng vấn
Full-time / Quan tâm đến làm việc từ xa
6-10 năm
國立政治大學 National ChengChi University
傳播學院廣告學系, 東南亞語言學程(泰語)
Avatar of (Ike)Wen-Cheng Huang.
Avatar of (Ike)Wen-Cheng Huang.
Past
行銷企劃專員 (約聘實習) @新加坡商邁盛絡國際企業有限公司 Maxonrow
2019 ~ 2019
主管特別助理、財務分析/財務人員、行銷企劃人員、活動企劃人員、網站行銷企劃
Trong vòng một tháng
測 | 主要著重在學齡前、英語能力測驗等學術學業議題、幼兒英語教學、第二外語英語教學與補教業市場規模評估。 學歷國立政治大學 Marketing大阪立命館大學 資訊科技產業學程政大公企中心 (CPBAE) 人力資源管理國立政治大學 斯拉夫語文學系 資格認證
Word
Excel
PowerPoint
Thất nghiệp
Sẵn sàng phỏng vấn
Full-time / Quan tâm đến làm việc từ xa
10-15 năm
國立政治大學
Marketing
Avatar of Wei Hou.
Avatar of Wei Hou.
Past
Account Manager @Pinkoi
2022 ~ 2023
UI/UX Designer
Trong vòng một tháng
Wei Hou 侯薇 熱愛文字、設計、音樂, 深信「每個人都能成名15分鐘」, 期望對世界發揮一些自己的影響力。 [email protected] 教育程度 Education 國立政治大學 日本語文學系 廣告系雙學士 日本慶應義塾大學 交換學生 技能 Skill Marketing|Project management Figma Adobe Illustrator, Photoshop 語言能力 Language Mandarin Chinese (Native) Japanese (Fluent, JLPT
Word
PowerPoint
Excel
Thất nghiệp
Sẵn sàng phỏng vấn
Full-time / Quan tâm đến làm việc từ xa
4-6 năm
日本慶應義塾大學 Keio University
交換學生 Exchange Student
Avatar of the user.
Avatar of the user.
Past
秘書處社群專員 @CDPA中華辯論推廣協進會
2020 ~ Hiện tại
社群編輯/行銷企劃/媒體公關
Trong vòng một tháng
word
powerpoint
google analytics
Thất nghiệp
Sẵn sàng phỏng vấn
Full-time / Quan tâm đến làm việc từ xa
6-10 năm
國立政治大學
社會學系
Avatar of the user.
Avatar of the user.
Past
VR/AR 專案經理 @卡米爾股份有限公司
2017 ~ 2018
product manager or bd manager
Trong vòng một tháng
Word
PowerPoint
Project Management
Thất nghiệp
Sẵn sàng phỏng vấn
Part-time / Quan tâm đến làm việc từ xa
10-15 năm
國立政治大學
科技管理與智慧財產權研究所
Avatar of Jack Chen.
Avatar of Jack Chen.
專案經理 @摩哈特運動科技股份有限公司
2018 ~ Hiện tại
Project Manager、PM、專案經理、UX、網站企劃、產品企劃
Trong vòng ba tháng
發,協助台新銀行建置該行第一個行動錢包APP「LETSPAY行動錢包」。 》台新銀行 LETSPAY行動錢包 iPhone APP 》國泰車險 線上投保 iPad APP (限企業內部使用) 學歷國立政治大學(National Chengchi University) 東亞研究所私立天主教輔仁大學 法律學系 技能 User Experience Mobile Development App Store Optimization SEO Wireframe user journeys & flows User Acquisition Language Chinese English
Swift/iOS
mobile development
App Store Optimization
Đã có việc làm
Sẵn sàng phỏng vấn
Full-time / Quan tâm đến làm việc từ xa
6-10 năm
國立政治大學(National Chengchi University)
東亞研究所

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Hơn một năm
訊連科技股份有限公司
2021 ~ 2021
台灣
Professional Background
Tình trạng hiện tại
Đang học tập
Tiến trình tìm việc
Professions
Data Scientist
Fields of Employment
Kinh nghiệm làm việc
1-2 năm kinh nghiệm làm việc (Dưới 1 năm liên quan)
Management
Kỹ năng
Python
python django
keras
TensorFlow
Data Analytics
machine learning
deep learning with tensorflow
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資料科學
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Quan tâm đến làm việc từ xa
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Trường học
國立政治大學
Chuyên ngành
資訊科學
In

游勤葑 Chin Feng Yu

Data Scientist 

  Taiwan

[email protected]

研究 Deep learning & Adversarial training & Active Learning
玉山人工智慧公開挑戰賽2019秋季賽第二名
多年資料處理以及機器學習與深度學習建模的經驗




學歷

2021 - 2022

國立政治大學

資訊科學所

2019 - 2021

國立彰化師範大學

資訊管理系

Top Conference Paper Publication

C. -F. Yu and H. -K. Pao, "Virtual Adversarial Active Learning," 2020 IEEE International Conference on Big Data (Big Data), Atlanta, GA, USA, 2020, pp. 5323-5331, doi: 10.1109/BigData50022.2020.9378021


Abstract—In traditional active learning, one of the most well-known strategies is to select the most uncertain data for annotation. By doing that, we acquire as most as we can obtain from the labeling oracle so that the training in the next run can be much more effective than the one from this run once the informative labeled data are added to the training. The strategy, however, may not be suitable when deep learning becomes one of the dominant modeling techniques. Deep learning is notorious for its failure to achieve a certain degree of effectiveness under the adversarial environment. Often we see the sparsity in deep learning training space which gives us a result with low confidence. Moreover, to have some adversarial inputs to fool the deep learners, we should have an active learning strategy that can deal with the aforementioned difficulties. We propose a novel Active Learning strategy based on Virtual Adversarial Training (VAT) and the computation of local distributional roughness (LDR). Instead of selecting the data that are closest to the decision boundaries, we select the data that is located in a place with rough enough surface if measured by the posterior probability. The proposed strategy called Virtual Adversarial Active Learning (VAAL) can help us to find the data with rough surface, reshape the model with smooth posterior distribution output thanks to the active learning framework. Moreover, we shall prefer the labeling data that own enough confidence once they are annotated from an oracle. In VAAL, we have the VAT that can not only be used as a regularization term but also helps us effectively and actively choose the valuable samples for active learning labeling. Experiment results show that the proposed VAAL strategy can guide the convolutional networks model converging efficiently on several well-known datasets. 
Keywords: Active Learning, Adversarial Examples, Virtual Adversarial Training, Adversarial Training


工作經歷

二月 2021 - 六月 2021

AI QA實習生

訊連科技股份有限公司

 The beta test for FaceMe® Security


產學專案

三月 2021 - 7月 2021

台大醫院神經科--Parkinson Disease Detection

三月 2021 - 7月 2021

KaiKuTeK 手勢辨識


技能

Web Design

HTML, CSS, Javascript, Django


Machine Learning

Tensorflow & Keras 

Semi-Supervised/ Supervised / Unsupervised Learning 

Anomaly Detection, Object Detection

Others

C++

Java

Python


比賽經驗


玉山人工智慧公開挑戰賽2019秋季賽 第二名


校園專案-外匯車銷售平台

利用 Python Django 打造外匯車銷售網頁

建置 ER model ,後台管理者Dashboard

網頁設計美化 




校園專案-人臉辨識門禁管理

 因應疫情打造一個以人臉辨識為基礎的門禁系統, 此門禁系統會連動學校的健康以及旅遊史資料庫, 經過門禁系統使自動調閱學生的旅遊史。

Resume
Hồ sơ của tôi

游勤葑 Chin Feng Yu

Data Scientist 

  Taiwan

[email protected]

研究 Deep learning & Adversarial training & Active Learning
玉山人工智慧公開挑戰賽2019秋季賽第二名
多年資料處理以及機器學習與深度學習建模的經驗




學歷

2021 - 2022

國立政治大學

資訊科學所

2019 - 2021

國立彰化師範大學

資訊管理系

Top Conference Paper Publication

C. -F. Yu and H. -K. Pao, "Virtual Adversarial Active Learning," 2020 IEEE International Conference on Big Data (Big Data), Atlanta, GA, USA, 2020, pp. 5323-5331, doi: 10.1109/BigData50022.2020.9378021


Abstract—In traditional active learning, one of the most well-known strategies is to select the most uncertain data for annotation. By doing that, we acquire as most as we can obtain from the labeling oracle so that the training in the next run can be much more effective than the one from this run once the informative labeled data are added to the training. The strategy, however, may not be suitable when deep learning becomes one of the dominant modeling techniques. Deep learning is notorious for its failure to achieve a certain degree of effectiveness under the adversarial environment. Often we see the sparsity in deep learning training space which gives us a result with low confidence. Moreover, to have some adversarial inputs to fool the deep learners, we should have an active learning strategy that can deal with the aforementioned difficulties. We propose a novel Active Learning strategy based on Virtual Adversarial Training (VAT) and the computation of local distributional roughness (LDR). Instead of selecting the data that are closest to the decision boundaries, we select the data that is located in a place with rough enough surface if measured by the posterior probability. The proposed strategy called Virtual Adversarial Active Learning (VAAL) can help us to find the data with rough surface, reshape the model with smooth posterior distribution output thanks to the active learning framework. Moreover, we shall prefer the labeling data that own enough confidence once they are annotated from an oracle. In VAAL, we have the VAT that can not only be used as a regularization term but also helps us effectively and actively choose the valuable samples for active learning labeling. Experiment results show that the proposed VAAL strategy can guide the convolutional networks model converging efficiently on several well-known datasets. 
Keywords: Active Learning, Adversarial Examples, Virtual Adversarial Training, Adversarial Training


工作經歷

二月 2021 - 六月 2021

AI QA實習生

訊連科技股份有限公司

 The beta test for FaceMe® Security


產學專案

三月 2021 - 7月 2021

台大醫院神經科--Parkinson Disease Detection

三月 2021 - 7月 2021

KaiKuTeK 手勢辨識


技能

Web Design

HTML, CSS, Javascript, Django


Machine Learning

Tensorflow & Keras 

Semi-Supervised/ Supervised / Unsupervised Learning 

Anomaly Detection, Object Detection

Others

C++

Java

Python


比賽經驗


玉山人工智慧公開挑戰賽2019秋季賽 第二名


校園專案-外匯車銷售平台

利用 Python Django 打造外匯車銷售網頁

建置 ER model ,後台管理者Dashboard

網頁設計美化 




校園專案-人臉辨識門禁管理

 因應疫情打造一個以人臉辨識為基礎的門禁系統, 此門禁系統會連動學校的健康以及旅遊史資料庫, 經過門禁系統使自動調閱學生的旅遊史。