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Data Science Competition Participant @Self-Employed
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一個月內
Microsoft Office
python
machine learning
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National University of Singapore
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Frontend Engineering Manager, Data Science @Vpon Big Data Group
2022 ~ 2023
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一個月內
to system planning and front-end architecture decisions for security, stability, and scalability. 5. Implemented Git Flow and Github Actions for efficient team collaboration. 6. Wrote unit tests, E2E tests using Jest, Cypress, and Mocks Server for code and system stability. Sr. Frontend Engineer, Data Science • Vpon Big Data Group MayFebruary 2022 | Taipei, Taiwan 1. U sing React and TypeScript to build a large-scale data platform, featuring data visualizations and audience segments. 2. Using deck.gl and vector tiles to build geo data visualizations, with loading times under 1s
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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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中國醫藥大學(China Medical University)
臨床醫學研究所
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賴泳瑄(Aimons) Software [email protected] 大家好,我在大學期間創業開設飲料店持續經營5年,曾經同時管理2間店與12位工讀生,後來因為對於資訊的興趣繼續讀碩士,在碩士期間研究並學習AI與各種語言工具配合過5個科技部計畫,畢業後在東海擔任兼
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Tunghai University
資訊
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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
一個月內
and reducing turnaround time. ◆Managed large-scale data processing tasks, demonstrating expertise in analyzing and handling datasets of hundreds of millions, to bolster model development and optimization. ◆Excelled in distributed computing, optimizing code execution across thousands of systems to significantly improve processing speed and efficiency. ◆Developed sophisticated data visualization tools to distill complex datasets into actionable insights, aiding strategic decision-making. The University of Tokyo, Foreign Researcher (OctSep◆Pioneered a neural network-based approach for cell image classification and data visualization, enhancing lab capabilities in biological research. ◆Designed a user-friendly GUI for neural network model
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National Chiao-Tung University
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一個月內
Pandas, Hugging Face, Gradio, LangChain, Tensorflow, Keras, FastAPI, OpenCV, Airflow, Git, Docker, Jenkins, Line Bot , Azure Bot Service, Tableau ML & NLP Techniques: LMOps, RAG, Fine-tune LLMs, Text Generation, Multi-Document Summarization, Recommendation System, Text Classification, Named Entity Recognition, CoT Research and Work Experience Research Assistant OctPresent Institute of Information Science, Academia Sinica, Taiwan Natural Language and Knowledge Processing Lab (NLP Lab) National Taiwan University Hospital (NTUH): Focused on exploring the generality and expertise of LLMs ( e.g., LLaMA2, Zephyr. ) in medical Q&A applications, improving model performance by 2.01% . Efficiency Optimization: Utilized Low
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Natural Language Processing (NLP)
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國立政治大學(National Chengchi University)
資訊科學系
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資深管理師 @群聯電子 PHISON Electronics
2020 ~ 現在
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CHUN-HSIEN (TEDDY) LIN E-mail: [email protected] Tel:South Dist., Taichung City, Taiwan (R.O.C.) My name is Teddy Lin, and I come from Miaoli, Taiwan. I am 39 years old and hold three master's degrees. I specialized in Industrial Management at Chung Hua University in Taiwan, Environmental Science and Management at Samford University in the United States, and Computer Science at National Chung Hsing University in Taiwan. Currently, I am pursuing a Ph.D. in Data Science and Engineering at National Yang Ming Chiao
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National Yang Ming Chiao Tung University
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Consultant @Startup
2023 ~ 2024
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戶觀察與深度訪談 • 透過線上線下顧客行為分析,驗證市場機會 • 個案研究與產業趨勢分析 • 整合內部資料與台灣政府的 Open data,自動化業務開發環節 • 透過 Tableau Server 建置公司資料倉庫 • 使用 Python 和 Tableau Prep 自動化 ETL,建立datapineline • 領導 A/B 測試設計與執行 Data Science
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Tableau Prep/Tableau Desktop
ETL
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Fu Jen Catholic University
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Electrical Maintenance @PT. Pabrik Kertas Tjiwi Kimia Tbk.
2021 ~ 2023
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in preparation for when there is a tool has problem or automation project Education Politeknik Perkapalan Negeri Surabaya Automation Engineering,GPASkill Preventive Maintenance ( Preparing weekly, monthly summary, and exception reports ) AC / DC Drive Wiring Diagram ( AUTOCAD, EPLAN P8 Electrical ) PLC and HMI Programming SCADA, Power Inverter Project and People Management Electrical Troubleshooting Computerized Maintenance Management Systems (CMMS) Data Analysis and Visualization Machine Learning Certification Data Science and Machine Learning - Purwadhika Digital Technology SchoolPurwadhikaSystem 800xA with AC 800M Hardware Maintenance and Troubleshooting - ABBInstrument Inspector level 2 - Inspector TrainingInstrument Inspector level 1 - Inspector TrainingPLC Intermediate Engineer - PPNSIndustrial Automation System Design - BNSP
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Machine Learning
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Politeknik Perkapalan Negeri Surabaya
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Master thesis student R&D
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2024 ~ 現在
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學歷
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KTH Royal Institute of Technology
主修科系
Computer Science
列印

 

Shiuan-Ting Lin (Jeremy)

National Yang Ming Chiao Tung Uni.(NYCU)

MSc in Statistics

 Taipei, Taiwan             


  • Project experience:
    • Jan. 2024 - Jun. 2024: Explanation Analysis using Rule Extraction at Ericsson, Sweden.
  • Work experience:
    • Jan. 2024 - Jun. 2024: Master student R&D at Ericsson, Sweden
    • Jan. 2023 - Jun. 2023:  Tutor teaching Natural Language Processing.
    • Jun. 2022 - Dec. 2022: Tutor teaching Machine Learning.
  • Teamwork experience:
    • Primary organizer for the National Statistical Research Institute Cup.
    • Captain of the basketball team in the statistics department.
  • I'm interested in machine learning related application and having experience in Computer Vision, Natural Language Processing, and Explainable AI.
  • The research topic for my master thesis: Deep Spatio-Temporal  Multi-View Representation Learning.

Skills

Programming Languages


  • Python 
    • Scikit-Learn, TensorFlow
    • Web Crawling
    • Data Visualization

Deep Learning related


  • Natural Language Processing
  • Computer Vision
  • Model Compression 
  • Dimension Reduction
  • Reinforcement Learning

Machine Learning related


  • Random Forest
  • Support Vector Machine
  • Regression Analysis
  • Time Series Analysis
  • Explainable AI

Work Experience

Master thesis student R&D

Ericsson

Jan. 2024 - Jun. 2024
Stockholm, Sweden

Project: Explanation Analysis Using Rule Extraction 

In this project, I combine the counterfactual explanation technique (specifically DiCE) with the rule extraction algorithm (Discretized Bayes Rule extraction) to extract understandable rules from a black box AI model.

Education

Royal Institute of Technology (KTH), Sweden

Exchange program in Computer Science

 Aug. 2023 - Jun. 2024

National Yang Ming Chiao Tung University (NYCU), Taiwan

MSc in Statistics

2021 - 2023

National Tsing Hua University  (NTHU), Taiwan

BSs in Mathematics

2017 - 2021


Portfolios

Deep Learning- Advanced Course

First year at KTH


Siamese Masked Autoencoder: Paper Reproduction, Link

We have used the PyTorch framework to reproduce a semi-supervised multi-object segmentation model, which extends the Masked Autoencoder. The authors have incorporated a Siamese network into the Masked Autoencoder, enabling it to outperform some state-of-the-art (SOTA) models like VideoMAE and Dino.

My contribution:

  • Model Building and Validation: Responsible for constructing, evaluating, and visualizing the results of our models to ensure accuracy and efficiency.

  • Report Writing: Tasked with compiling comprehensive project documentation and results analysis.
  • Training and Management: Managed the training of models on Google Cloud Platform (GCP) and maintained our project’s codebase on GitHub.

Big Data Analytics

First year at NYCU


DL application-Food Classification using Tensorflow and Anvil web APP, Link

We used deep learning and ANVIL's product to create an interactive interface. 

My contribution: 

  • Construct the deep learning model for the app using Transfer Learning techniques with EfficientNetV2S as the base model.
  • Developed a model, the Domain-Selection-Model, to select between two models trained on distinct datasets for making predictions. 

Deep Learning

First year at NYCU



Deep learning application-Self-driving Robot simulation using PyTorch, Link

We built an image recognition deep learning model to do the self-driving car simulation.

My contribution:

  • Data augmentation and data pre-processing.
  • Construct the deep learning model for the app using Transfer Learning techniques with ResNet50 as the base model.

Machine Learning

Senior year at NTHU


Deposit Subscription Prediction using R, Link

We implement several statistical-based machine learning methods to predict whether the customers will subscribe to the deposit service or not. 

My contribution: 

  • LDA, QDA, KNN, and Naive Bayes, four statistical-based machine learning methods, to make predictions using R.

Spatial Data Analysis

Senior year at NTHU


NBA players' shooting hot zone analysis using R, Link

We used R to implement a spatial statistical prediction method called Kriging to analyze the shooting hot zone of NBA players.

My contribution:

  • Model building using Kriging method.

履歷
個人檔案

 

Shiuan-Ting Lin (Jeremy)

National Yang Ming Chiao Tung Uni.(NYCU)

MSc in Statistics

 Taipei, Taiwan             


  • Project experience:
    • Jan. 2024 - Jun. 2024: Explanation Analysis using Rule Extraction at Ericsson, Sweden.
  • Work experience:
    • Jan. 2024 - Jun. 2024: Master student R&D at Ericsson, Sweden
    • Jan. 2023 - Jun. 2023:  Tutor teaching Natural Language Processing.
    • Jun. 2022 - Dec. 2022: Tutor teaching Machine Learning.
  • Teamwork experience:
    • Primary organizer for the National Statistical Research Institute Cup.
    • Captain of the basketball team in the statistics department.
  • I'm interested in machine learning related application and having experience in Computer Vision, Natural Language Processing, and Explainable AI.
  • The research topic for my master thesis: Deep Spatio-Temporal  Multi-View Representation Learning.

Skills

Programming Languages


  • Python 
    • Scikit-Learn, TensorFlow
    • Web Crawling
    • Data Visualization

Deep Learning related


  • Natural Language Processing
  • Computer Vision
  • Model Compression 
  • Dimension Reduction
  • Reinforcement Learning

Machine Learning related


  • Random Forest
  • Support Vector Machine
  • Regression Analysis
  • Time Series Analysis
  • Explainable AI

Work Experience

Master thesis student R&D

Ericsson

Jan. 2024 - Jun. 2024
Stockholm, Sweden

Project: Explanation Analysis Using Rule Extraction 

In this project, I combine the counterfactual explanation technique (specifically DiCE) with the rule extraction algorithm (Discretized Bayes Rule extraction) to extract understandable rules from a black box AI model.

Education

Royal Institute of Technology (KTH), Sweden

Exchange program in Computer Science

 Aug. 2023 - Jun. 2024

National Yang Ming Chiao Tung University (NYCU), Taiwan

MSc in Statistics

2021 - 2023

National Tsing Hua University  (NTHU), Taiwan

BSs in Mathematics

2017 - 2021


Portfolios

Deep Learning- Advanced Course

First year at KTH


Siamese Masked Autoencoder: Paper Reproduction, Link

We have used the PyTorch framework to reproduce a semi-supervised multi-object segmentation model, which extends the Masked Autoencoder. The authors have incorporated a Siamese network into the Masked Autoencoder, enabling it to outperform some state-of-the-art (SOTA) models like VideoMAE and Dino.

My contribution:

  • Model Building and Validation: Responsible for constructing, evaluating, and visualizing the results of our models to ensure accuracy and efficiency.

  • Report Writing: Tasked with compiling comprehensive project documentation and results analysis.
  • Training and Management: Managed the training of models on Google Cloud Platform (GCP) and maintained our project’s codebase on GitHub.

Big Data Analytics

First year at NYCU


DL application-Food Classification using Tensorflow and Anvil web APP, Link

We used deep learning and ANVIL's product to create an interactive interface. 

My contribution: 

  • Construct the deep learning model for the app using Transfer Learning techniques with EfficientNetV2S as the base model.
  • Developed a model, the Domain-Selection-Model, to select between two models trained on distinct datasets for making predictions. 

Deep Learning

First year at NYCU



Deep learning application-Self-driving Robot simulation using PyTorch, Link

We built an image recognition deep learning model to do the self-driving car simulation.

My contribution:

  • Data augmentation and data pre-processing.
  • Construct the deep learning model for the app using Transfer Learning techniques with ResNet50 as the base model.

Machine Learning

Senior year at NTHU


Deposit Subscription Prediction using R, Link

We implement several statistical-based machine learning methods to predict whether the customers will subscribe to the deposit service or not. 

My contribution: 

  • LDA, QDA, KNN, and Naive Bayes, four statistical-based machine learning methods, to make predictions using R.

Spatial Data Analysis

Senior year at NTHU


NBA players' shooting hot zone analysis using R, Link

We used R to implement a spatial statistical prediction method called Kriging to analyze the shooting hot zone of NBA players.

My contribution:

  • Model building using Kriging method.