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自動化-副主任工程師 @泰金寶電通股份有限公司
2018 ~ 2024
自動化工程師、自動化主管
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整合塗膠自動化 ● 生產線成品搬運AGV導入評估 ● 設備稼動狀態可視化開發( Arduino) 工程部-課長 先構技術研發股份有限公司 PrefactorTech • 三月三月 2016 ● SSD、USB、CF/SD Card裂板自動化 ● NB主機板測試自動化 ● 車用零件成品、組裝半成品外觀檢查 ● SSD組裝、測試
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10 到 15 年
大同大學 Tatung University,TTU
機械工程學系
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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
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Python
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Natural Language Processing (NLP)
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國立政治大學(National Chengchi University)
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TANDORI CHIEF @TONSFOODPARK
2022 ~ 現在
TANDOORI CHIEF
兩個月內
Ensure that all tandoori dishes are prepared and presented according to established standards and recipes. Collaborate with other members of the kitchen team to coordinate food preparation and ensure timely service. EducationSBPG NATH IC MANIKA CHOCK BHINGA SARASWATI 6 Proven experience as a Tandoori Chef or similar role, preferably in a high-volume restaurant setting. In-depth knowledge of Indian cuisine, particularly tandoori cooking techniques and spices. Strong culinary skills, including marinating, grilling, and roasting. Ability to work effectively in a fast-paced environment and under pressure. Excellent attention to detail and organizational skills
Adaptability and flexibility
Passion for Indian Cuisine:
Hygiene Standards:
就職中
正在積極求職中
全職 / 暫不考慮遠端工作
10 到 15 年
SBPG NATH IC MANIKA CHOCK BHINGA SARASWATI
6
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Product Marketing Manager @National Math and Science Initiative
2024 ~ 現在
UX Writer, Content Marketer, UX/UI Designer
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Figma
Canva
Microsoft 365
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6 到 10 年
University of Colorado Denver
Entertainment Industry Marketing
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Guru @SMP Djuwita
2022 ~ 現在
Guru Matematika
半年內
Julius Yahya Hutagalung Saya seorang sarjana pendidikan di Universitas Islam Sumatera Utara Medan, dengan IPKsaya seorang yang mengutamakan ketelitian, bertanggung jawab, dan konsistensi dalam menyelesaikan setiap pekerjaan. Saya seorang sarjana pendidikan yang berpengalaman di bidang pendidikan selama 8 tahun, terhitung dari 2015 sampai sekarang. Memiliki kemampuan kerjasama tim, manajemen waktu, manajemen waktu, kreatif, integritas tinggi, mampu beradaptasi, dan komunikasi yang baik. Berdidikasi dan bermotivasi tinggi untuk dapat mengembangkan karir prefesional. Berkomitmen untuk memberikan kinerja terbaik untuk sekolah. Pekanbaru, Pekanbaru City, Riau, Indonesia Pengalaman Kerja Guru • SMP Djuwita NovemberPresent Lorem ipsum dolor sit amet, consectetuer adipiscing
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4 到 6 年
UISU, MEDAN
Pendidikan Matematika
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Boiler Operator @PT Tanjung Power Indonesia
2018 ~ 現在
Power Plant Operation and Maintenance
一個月內
Microsoft Office
Word
PowerPoint
就職中
正在積極求職中
全職 / 暫不考慮遠端工作
6 到 10 年
Universitas Islam Kalimantan MAAB
Teknik Mesin
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Avatar of Stanley Wu.
曾任
Lead of Business Development @Imweb Corp, Taiwan Branch
2022 ~ 2023
Business Development Manager
一個月內
project KKStream Limited . Aug 2020 ~ Oct 2020 Business Development Manager ● Account management ● Develop sales strategies to acquire new customers ● Accounts receivables collection ● Resolve customer issues and complaints iKala Interactive Media Inc. Apr 2018 ~ Apr 2020 Sales Manager ● Key account management and monitor their preferences ● Develop sales strategies to acquire new customers ● Oversea (Japan) business development ● Project and forecast annual and quarterly revenue ● Collaborate with marketing executives to develop lead generation plans ● Cross-segment communication and alignment ● Accounts receivables collection ● Key account Yahoo, MOMO, myVideo, ETtoday .
Customer Relationship Management (CRM)
Sales Management
Account Management
待業中
正在積極求職中
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10 到 15 年
Chaoyang University of Science and Technology
CSIE
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ASISTEN OPERATOR @Perum Percetakan Uang Negara RI (PERURI)
2020 ~ 2022
operator produksi
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PERURI) OctoberOktober 2023 Bekerja di mesin intaglio. Melakukan persiapan dan memastikan mesin sudah siap produksi, mengawasi dan menjalankan kegiatan produksi sesuai target dan SOP, melakukan pengecekan secara berkala hasil produksi, serta melakukan perbaikan pada mesin jika terjadi trouble/masalah ringan. PRAKTEK INDUSTRI • PT Jayatama Selaras FebruaryApril 2020 Mengamati proses produksi dan permasalahan di bagian pembuatan preform botol pet. EducationTRISAKTI SCHOOL OF MULTIMEDIA S1 Teknologi GrafikaPoliteknik Negeri Media Kreatif Jakarta D3 Teknik Grafika KemasanSMK GRAFIKA DESA PUTERA Produksi Grafika Skills Printing Production Printing Operations Graphic Design Packaging Design MS Office Languages Indonesian — Native or Bilingual English — Beginner
Printing Production
Printing Processes
Printing Press
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4 到 6 年
TRISAKTI SCHOOL OF MULTIMEDIA
S1 Teknologi Grafika
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Data Engineer @Tesla
2023 ~ 2023
Data engineer / Data anyayst
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engineer • 富盈數據 Maintained distributed system and database • Constructed and managed the Hadoop ecosystem with Ambari. Built ETL pipeline to query multi-source database which processing more than three terabytes (TB) provided 90% of the analysis needs (Hive, HBase, Python, ELK, MySQL) • Established data collection and analysis workflow, saving Data scientists’ 30% of the time to analyze and build machine learning models with collected data (Elasticsearch, PySpark, Airflow) Constructed backend system and API • Researched webpage user preference and behavior, and modified advertising performance evaluation system to enable precision marketing, increasing the accuracy by 300%...
python
Linux
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正在積極求職中
全職 / 對遠端工作有興趣
4 到 6 年
University of Texas at Dallas
Information Technology and Management

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超過一年
訊連科技股份有限公司
2021 ~ 2021
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就學中
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python django
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希望獲得的職位
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期望的工作地點
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對遠端工作有興趣
接案服務
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國立政治大學
主修科系
資訊科學
列印

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。

履歷
個人檔案

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。