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4 到 6 年
6 到 10 年
10 到 15 年
15 年以上
Avatar of 謝坤達.
Avatar of 謝坤達.
副教授 @福建省福州市外語外貿學院
2024 ~ 现在
專案管理
一個月內
謝坤達 1、具有多年主持研發經驗,專長智慧電網、智慧家庭及RFID、無線感測網路架構規劃等,謀求技術顧問、產品市場規劃相關職務。 2、熟悉計算機通訊、計算機語言、資安加解密等專長,並擅長規劃各種資通訊、防災應用、智慧電網應用。 專案管理 城市
Google Drive
PowerPoint
Word
就职中
目前会考虑了解新的机会
兼职 / 对远端工作有兴趣
15 年以上
國立高雄科技大學(原國立高雄應用科技大學)
電機工程
Avatar of Hoàng Nguyễn.
Avatar of Hoàng Nguyễn.
service engineer @Melchers Viet Nam Limited
2018 ~ 现在
Field Service Engineer
一個月內
the basis of my knowledge, fast learning and creative skills. Thành phố Hồ Chí Minh, Việt Nam Work expericence Service engineer • Melchers Viet Nam Limited Julypresent -Installation, repair , troubleshooting ,training and commissioning machine -Have experienced in the fields of : pharmaceuticals , shoes ,roasters, laboratories . -Lead the project implementation . -Remote control from headquater . Supervisor • Hoshino company AugustMayInstallation , repair machines . -Set up machines for new production lines . -Design Jig, tooling . Technical • Nidec Copal DecemberMayRepair ,maintenance and writing program for AOI machine, Janome. EducationCollege Cao Thang Industry Electronic Certificates Desma Gmb certificate Fette compacting Gmb certificate
就职中
正在积极求职中
全职 / 对远端工作有兴趣
6 到 10 年
Trường Cao Đẳng Cao Thắng
Điện tử

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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。
一個月內
Machine Learning Engineer
Chungyo Group
2020 ~ 2021
Taipei City, 台灣
专业背景
目前状态
待业中
求职阶段
专业
数据科学家
产业
工作年资
4 到 6 年工作经验(2 到 4 年相关工作经验)
管理经历
技能
Competitive
Curious
Resourcefulness
Team Player
python programming
Tensorflow (Keras)
machine learning
Data Visualization
C/C++
Unix
Git
AWS EC2
GCP
self learner
语言能力
Chinese
母语或双语
English
中阶
求职偏好
希望获得的职位
Machine Learning Engineer
预期工作模式
全职
期望的工作地点
Taipei, 台灣, Tōkyō, 東京都日本, Singapore, China
远端工作意愿
对远端工作有兴趣
接案服务
学历
学校
National Cheng Kung University
主修科系
Computer and Communication Engineering
列印
Cug822fjb23y2crqwd0j

Jordan, Yen-Ting Chen

 

Data Science
Taiwan

886-952-793-350
[email protected]

Core Competencies


Hard Skills

  • Python / Unix / Shell Script / SQL
  • ML / DL / NLP
  • Git / Docker
  • Anaconda / Poetry
  • GCP / AWS
  • Retrieval-Augmented Generation (RAG)
  • Vector Database (Qdrant, MongoDB Atlas)
  • FastAPI


Soft Skills

  • Leadership and mentorship
  • Strong problem-solving ability 
  • Strategic Planning and Execution
  • Self-learner 
  • Code Review and Quality Assurance
  • Highly stress resistant 
  • Experience working in a startup and be part of an agile team
  • Project management
  • Mandarin (native) /English (TOEIC 840)


Familier Libraries

  • Tensorflow / Keras 
  • Scikit-learn
  • HuggingFace
  • Pandas / Numpy
  • Langchain

Work Experience


Uto.ai, Team Lead | Oct. 2023 - Present

At Uto.ai, I led the development of a multilingual, LLM-based chatbot that improved service delivery and user interaction across various countries. I managed a team of five engineers, focusing on complex, cross-functional communications in a fast-paced environment.

Leadership and Innovation

Spearheaded the AI team, focusing on talent acquisition, training, and mentorship. Implemented effective strategies for team growth and skill enhancement.

Project Management

Collaborated with stakeholders to align project goals with business objectives, ensuring cross-functional collaboration for project advancement.

Technical Expertise

Enhanced chatbot interactions by integrating vector databases with Retrieval-Augmented Generation (RAG), creating a customizable knowledge base, enhancing character interaction and user experience. Enabled support for multiple languages, catering to a diverse user base and showcasing the project's international reach.

Development of Long-Term Memory Systems

Utilized MongoDB to build a long-term memory system for the chatbot, enabling the retention and contextual use of information across interactions. 

API Development

Led the development of RESTful APIs, ensuring seamless integration and communication between the chatbot and external services.

Quality Assurance and Best Practices

Conducted code reviews to maintain high standards of code quality, adherence to best practices, and to foster a culture of continuous learning and improvement within the team.


Playsee, AI Engineer, Mar. 2023 ~ Oct. 2023

At Playsee, I developed a conversational recommendation system that analyzed data from over 10 million users across multiple platforms. I designed text and video content recommendations tailored to international markets, thereby enhancing global user engagement.

Data Analysis at Scale

  • Conducted in-depth analysis of extensive social media data, identifying user patterns and trends to inform the development of a conversational recommendation system.


Personalized Recommendations

  • Leveraged the prowess of large language models (LLM), including ChatGPT, to guide users in articulating their preferences, enabling precise content recommendations.
  • Collaborated directly with OpenAI engineers to stay at the forefront of LLM information and technology through bi-weekly webinar meetings.
  • Analyzed user behavior with precision to deliver tailored recommendations, such as posts, reels and local stores.
  • Formulated targeted advertising recommendations for commercial accounts in contexts that maximize their impact.

Vector Database Optimization

  • Performed exhaustive benchmarking of multiple vector databases, discerning and implementing best practices to elevate system performance.
  • Devised meticulous database schemas, finely tuned to achieve peak performance.

Sentence Embedding Service

  • Evaluated a spectrum of embedding models, aligning selections with project requirements and effectively balancing performance and cost.
  • Implemented GPU acceleration for expedited embedding computations while prudently managing budget constraints.
  • Successfully orchestrated the deployment of the sentence embedding service onto Google Cloud Platform (GCP).

Emotibot, NLP Data Scientist, Sep. 2021 ~ Feb. 2023

As an NLP Data Scientist at Emotibot, I dedicated myself to advancing the field of Natural Language Processing (NLP) through research, innovation, and practical application. My role encompassed a wide range of responsibilities aimed at optimizing NLP downstream tasks, including Sentiment Analysis, Name Entity Recognition (NER), Relation Extraction, Key Information Extraction, and more. Here's a breakdown of my contributions:

Name Entity Recognition System

  • Pioneered the development of a re-trainable platform for NER models, enabling fine-tuning with customized datasets.
  • Successfully fine-tuned the baseline NER model, achieving an outstanding F1 score of up to 90%.
  • Applied OCR results to extract critical information from receipts and tickets, enhancing data extraction capabilities.

Sentence Embedding

  • Conceived and executed experiments utilizing pre-trained models to generate sentence embeddings, enhancing the performance of various NLP downstream tasks.
  • Created an API server capable of receiving sentences and returning embeddings, streamlining the integration of pre-trained models across different modules, and improving operational efficiency.
Document Understanding
  • Implemented a groundbreaking document encoder that leveraged coordinates and sentence embeddings from bounding boxes as features. 
  • Incorporated BERT models to extract relationships between different tokens within documents, augmenting the understanding of textual content with spatial information. 
  • Established a dedicated sentence embedding API server to support seamless integration and utilization of these enhanced document understanding capabilities.

Chungyo Group, Machine Learning Engineer, Nov. 2020 ~ Apr. 2021 

Manage a project of a real-time forecasting system for online games. Analyzed the data using Python libraries such as Pandas, Scikit-Learn, TensorFlow to extract features to analysis user-behavior and built statistical models in Python based on ML algorithms like SVM, Logistic Regression, Neural Networks. 

Universal Scientific Industrial, Machine Learning Engineer, Oct. 2017 ~ Jun. 2020

Implementation of Object Detection and Face Recognition on embedding systems. These functions help users to classify photos automatically from the background with only a few hardware resources.

Education

National Cheng Kung University, M.Sc. in Institute of Computer and Communication Engineering, 2014 ~ 2016

National Central University, B.Cs. in Communication Engineering, 2009 ~ 2014

Self-learning

TensorFlow Developer Certificate, 2021/04

Testing the ability to use TensorFlow to build deep learning models for a range of tasks such as regression, computer vision, natural language processing, and time series forecasting.

Certification

Shopee Code League 2020

Participate in Shopee Code competition. The competition contains some different kind of data science applications, such as Data Cleaning, Data Analytics, Object Classification and NLP. Link

Shopee Code League - Product Detection - Kaggle

Use EfficientNet to detect products in images. Reach the top 30%.

Shopee Code League - Logistics - Kaggle

Cleaning data. Flagged out the late deliveries and penalties are imposed on the providers to ensure they perform their utmost.

简历
个人档案
Cug822fjb23y2crqwd0j

Jordan, Yen-Ting Chen

 

Data Science
Taiwan

886-952-793-350
[email protected]

Core Competencies


Hard Skills

  • Python / Unix / Shell Script / SQL
  • ML / DL / NLP
  • Git / Docker
  • Anaconda / Poetry
  • GCP / AWS
  • Retrieval-Augmented Generation (RAG)
  • Vector Database (Qdrant, MongoDB Atlas)
  • FastAPI


Soft Skills

  • Leadership and mentorship
  • Strong problem-solving ability 
  • Strategic Planning and Execution
  • Self-learner 
  • Code Review and Quality Assurance
  • Highly stress resistant 
  • Experience working in a startup and be part of an agile team
  • Project management
  • Mandarin (native) /English (TOEIC 840)


Familier Libraries

  • Tensorflow / Keras 
  • Scikit-learn
  • HuggingFace
  • Pandas / Numpy
  • Langchain

Work Experience


Uto.ai, Team Lead | Oct. 2023 - Present

At Uto.ai, I led the development of a multilingual, LLM-based chatbot that improved service delivery and user interaction across various countries. I managed a team of five engineers, focusing on complex, cross-functional communications in a fast-paced environment.

Leadership and Innovation

Spearheaded the AI team, focusing on talent acquisition, training, and mentorship. Implemented effective strategies for team growth and skill enhancement.

Project Management

Collaborated with stakeholders to align project goals with business objectives, ensuring cross-functional collaboration for project advancement.

Technical Expertise

Enhanced chatbot interactions by integrating vector databases with Retrieval-Augmented Generation (RAG), creating a customizable knowledge base, enhancing character interaction and user experience. Enabled support for multiple languages, catering to a diverse user base and showcasing the project's international reach.

Development of Long-Term Memory Systems

Utilized MongoDB to build a long-term memory system for the chatbot, enabling the retention and contextual use of information across interactions. 

API Development

Led the development of RESTful APIs, ensuring seamless integration and communication between the chatbot and external services.

Quality Assurance and Best Practices

Conducted code reviews to maintain high standards of code quality, adherence to best practices, and to foster a culture of continuous learning and improvement within the team.


Playsee, AI Engineer, Mar. 2023 ~ Oct. 2023

At Playsee, I developed a conversational recommendation system that analyzed data from over 10 million users across multiple platforms. I designed text and video content recommendations tailored to international markets, thereby enhancing global user engagement.

Data Analysis at Scale

  • Conducted in-depth analysis of extensive social media data, identifying user patterns and trends to inform the development of a conversational recommendation system.


Personalized Recommendations

  • Leveraged the prowess of large language models (LLM), including ChatGPT, to guide users in articulating their preferences, enabling precise content recommendations.
  • Collaborated directly with OpenAI engineers to stay at the forefront of LLM information and technology through bi-weekly webinar meetings.
  • Analyzed user behavior with precision to deliver tailored recommendations, such as posts, reels and local stores.
  • Formulated targeted advertising recommendations for commercial accounts in contexts that maximize their impact.

Vector Database Optimization

  • Performed exhaustive benchmarking of multiple vector databases, discerning and implementing best practices to elevate system performance.
  • Devised meticulous database schemas, finely tuned to achieve peak performance.

Sentence Embedding Service

  • Evaluated a spectrum of embedding models, aligning selections with project requirements and effectively balancing performance and cost.
  • Implemented GPU acceleration for expedited embedding computations while prudently managing budget constraints.
  • Successfully orchestrated the deployment of the sentence embedding service onto Google Cloud Platform (GCP).

Emotibot, NLP Data Scientist, Sep. 2021 ~ Feb. 2023

As an NLP Data Scientist at Emotibot, I dedicated myself to advancing the field of Natural Language Processing (NLP) through research, innovation, and practical application. My role encompassed a wide range of responsibilities aimed at optimizing NLP downstream tasks, including Sentiment Analysis, Name Entity Recognition (NER), Relation Extraction, Key Information Extraction, and more. Here's a breakdown of my contributions:

Name Entity Recognition System

  • Pioneered the development of a re-trainable platform for NER models, enabling fine-tuning with customized datasets.
  • Successfully fine-tuned the baseline NER model, achieving an outstanding F1 score of up to 90%.
  • Applied OCR results to extract critical information from receipts and tickets, enhancing data extraction capabilities.

Sentence Embedding

  • Conceived and executed experiments utilizing pre-trained models to generate sentence embeddings, enhancing the performance of various NLP downstream tasks.
  • Created an API server capable of receiving sentences and returning embeddings, streamlining the integration of pre-trained models across different modules, and improving operational efficiency.
Document Understanding
  • Implemented a groundbreaking document encoder that leveraged coordinates and sentence embeddings from bounding boxes as features. 
  • Incorporated BERT models to extract relationships between different tokens within documents, augmenting the understanding of textual content with spatial information. 
  • Established a dedicated sentence embedding API server to support seamless integration and utilization of these enhanced document understanding capabilities.

Chungyo Group, Machine Learning Engineer, Nov. 2020 ~ Apr. 2021 

Manage a project of a real-time forecasting system for online games. Analyzed the data using Python libraries such as Pandas, Scikit-Learn, TensorFlow to extract features to analysis user-behavior and built statistical models in Python based on ML algorithms like SVM, Logistic Regression, Neural Networks. 

Universal Scientific Industrial, Machine Learning Engineer, Oct. 2017 ~ Jun. 2020

Implementation of Object Detection and Face Recognition on embedding systems. These functions help users to classify photos automatically from the background with only a few hardware resources.

Education

National Cheng Kung University, M.Sc. in Institute of Computer and Communication Engineering, 2014 ~ 2016

National Central University, B.Cs. in Communication Engineering, 2009 ~ 2014

Self-learning

TensorFlow Developer Certificate, 2021/04

Testing the ability to use TensorFlow to build deep learning models for a range of tasks such as regression, computer vision, natural language processing, and time series forecasting.

Certification

Shopee Code League 2020

Participate in Shopee Code competition. The competition contains some different kind of data science applications, such as Data Cleaning, Data Analytics, Object Classification and NLP. Link

Shopee Code League - Product Detection - Kaggle

Use EfficientNet to detect products in images. Reach the top 30%.

Shopee Code League - Logistics - Kaggle

Cleaning data. Flagged out the late deliveries and penalties are imposed on the providers to ensure they perform their utmost.