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Senior AI Research/Engineer (part-time) @NeuroBonic Inc.
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副理 @永豐金證券
2008 ~ 2021
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行與 NFT 發行。 技能 Programming C#、VB.Net ASP.NET Core、Windows Form、 ASP.Net Core MVC、Web API、gRPC、Crystal Report Python SQL、MS SQL Server SSIS、Redis Git、GitLab CI/CD、Docker、Docker Swarm、NetMQ AI Python、Pandas、Numpy Machine LearningDeep Learning Tensorflow、Keras CNN、RNN、NLP BlockChain Solidity HardHat Truffle 證照 證券商業務員、 期貨商業務員 風險管理人員資格 證券商自有資本適足比率進階計算法
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Expertise & Innovation Lead, Cloud @fifty-five
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SaaS website launch, overseeing deployment and development. - Data Analysis & Systems: Developed GCP-centric data systems, boosting data integration and analysis. - Team Leadership & Innovation: Created a Vertex AI recommendation engine, advancing data team methodologies. - Additional Milestones: Served as an instructor for a securities company and contributed to AWS's blog. Certified in AWS and Azure. EducationNational Chengchi University MS in Computer Science Thesis:Explainable Deep Learning-Based Recommendation Systems: Enhancing the Services of Public Sector Subsidy Online Platform Courses Taken: Big Data Analytics, Data mining, Reinforce Learning, Algorithm and BlockchainNational Cheng Kung Univers...
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4-6 years
National Chengchi University
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Technical Support Associate Manager @D-Link_友訊科技股份有限公司
2019 ~ Present
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換機架設、測試及支援MIS故障排除等。 4. 支援美國客戶FAE工作。 學歷中正大學 電子工程 技能 User Experience AI技術應用 Python程式設計、 Machine/Deep Learning: OpenCV、Tensorflow、Keras、CNN、DNN、RNN/LSTM GAN、VAE、AAE、NLP/Jieba GitHub: Detect_drowsiness: https://github.com/mikle1211/detect_drowsiness_demo FaceMaskDetect_YOLO5: https://github.com/mikle1211/FaceMaskDetect_YOLO5 Li...
Word
PowerPoint
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中正大學
電子工程
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AI Engineer @InterAgent
2020 ~ Present
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Will Kuan | AI Engineer An experienced AI engineer and data analyst skilled in demand forecasting and implementing sophisticated industrial scheduling engines, building my own deep learning framework, seeking a challenging role to leverage my skills and contribute to an innovative team. Hsinchu City, Taiwan Skills Python, R, TensorFlow Deep Learning in Time Series Sales Forecasting Multi-Agent AI Structure (MAS), API Development Scheduling Optimisation & Development Work Experience AI Engineer • InterAgent OctoberPresent Developed scheduling algorithms—with the synergy of parallel and multi-agent AI structure ( MAS )—to alleviate bottlenecks and optimise the distribution of jobs in production lines for a
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R
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清華大學
Service Science, Business-Oriented Data Analysis
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Blockchain Enginner & AI Lead @Portal Network
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contract, iOS blockchain dapp & wallet, NEO naming service, Ontology naming service, Qtum naming service, Ethereum ERC721 ERC20 and Gambling dapp, blockchain CLI kit, Host all kinds of blockchain node on AWS, GCP, Digital Ocean. iOS : Swift , experience with launch to App Store and update, in app analysis, ASO. Deep learning: python ,pandas ,scikit- learn ,numpy ,keras ,tensorflow ,pytorch, specialize on fintech, decentralize domain value predict, Annual financial report predict model, CNN, Research on Face Attributes, Large Language model. web: html, CSS, bootstrap. Others: Firebase, Microsoft azure ML, AWS EC2, DigitalOcean, GCP. UI/UX: Sketch
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blockchain development
Docker
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4-6 years
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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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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)
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4-6 years
國立政治大學(National Chengchi University)
資訊科學系
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Senior engineer @Chicony Electronics Co, Ltd.
2018 ~ Present
全端工程師、後端工程師、前端工程師、軟體專案主管、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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C
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6-10 years
National Taiwan Ocean University
Computer science and engineering
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Past
Lead Data Scientist / Senior Data Scientist @Vinnovation Network 維諾森資訊科技
2022 ~ 2023
資料科學家、資料科學工程師、機器學習工程師
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Shih-Wen Tsou - With more than 5 years of experience in Data Analysis, Machine Learning and Deep Learning, familiar with Modeling, Data Analysis, Image Processing, Machine Learning, and Deep Learning. Taipei City, Taiwan WORK EXPERIENCE Lead Data Scientist / Full Stack Data Scientist, Vinnovation Network, Taipei, Taiwan Data Engineering / Data Analysis Spearheaded the development of a fully automated data integration pipeline that aggregated diverse data sets into a S3 Data Lake. Successfully integrated a range of data sources, including real-time data feeds from AWS Redshift and DocumentDB, as well as batch processes to import traditional CSV
python
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keras
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4-6 years
台灣大學
大氣科學所

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Master thesis student R&D
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Ericsson
2024 ~ Present
Taipei, Taiwan
Professional Background
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Professions
Big Data Engineer, Data Engineer, Data Scientist
Fields of Employment
Artificial Intelligence / Machine Learning, Big Data, Internet
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Python
Deep Learning
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Data Science
R
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New Taipei City, 台灣, Taipei, 台灣
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School
KTH Royal Institute of Technology
Major
Computer Science
Print

 

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.

Resume
Profile

 

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.