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4-6 years
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Taipei, Taiwan
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數位行銷、媒體公關、文案企劃
Within six months
Word
PowerPoint
Excel
Full-time / Interested in working remotely
4-6 years
Goldsmiths, University of London
MA Political Communications
Avatar of 李盈蒨 Lualua.
Avatar of 李盈蒨 Lualua.
Lead Product Manager @國泰世華銀行
2020 ~ Present
Project Manager
Within one month
合作數位儲值支付帳戶並規劃流程與功能,並協助相關業務談判及法規可能性研究。 自我探索, SepSep 2012 湯森路透中文新聞部 Journalist, FebSep 2012 分析及撰寫外匯市場、債券市場及貨幣市場等報導,並即時更新盤中市況。 參加記者會以及採訪市場人士以建立可
Project Management
Project Planning
Product Planning
Full-time
6-10 years
國立政治大學
國際經營管理英語碩士
Avatar of 黃瀞儀.
Avatar of 黃瀞儀.
Past
News Anchor/Reporter @Formosa TV
2015 ~ 2020
Marketing Executive
More than one year
television productions throughout the entire project life cycle. -Include interview, write coverage, record, film edit, show host. -Provide creative input into the content and style of television shows. -Secure funding from a range of sponsors. -Manage budgets, assigning resources, creating production plans. News Anchor/Journalist • Formosa TV FebruaryMarchOffered global topics and international in-depth reports. . Hosted TV shows and news programs. . Executed through campaign and interview management. . Drew informative resources from data to create interviews and coverage. . Built strong relationships with prospects and partners, drove collaboration
word
photoshop
toeic
Unemployed
Full-time / Interested in working remotely
4-6 years
National Taiwan Normal University
Master's degree in Translation and Interpretation
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AI應用工程師 @碁仕科技
2018 ~ Present
軟體工程師
Within one month
Python
Reinforcement Learning
Computer Vision
Studying
Intern / Interested in working remotely
4-6 years
長榮大學
企管系

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Within one month
AI應用工程師 @ 碁仕科技
碁仕科技
2018 ~ Present
Taipei, 台灣
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Studying
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Machine Learning Engineer, AR/VR Engineer, Full Stack Development
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4-6 years
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I've had experience in managing 1-5 people
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Python
Reinforcement Learning
Computer Vision
ROS
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Print

Ivan Lee 李逸帆

Master of Computer Science

Hsinchu, Taiwan

       

Research and develop algorithms in my company. Cooperate with domestic and foreign manufacturers to use AI technology to solve problems that traditional algorithms cannot overcome. Completed or ongoing projects include defect detection, text recognition (OCR), airplane detection, random bin picking, bottle inspection, point cloud image cutting, and robotic arm grasping by reinforcement learning.

Cellphone: +886 0952152828
Gmail: [email protected]

Personal Web: https://www.ivan-lee.me/ 
Blog: https://medium.com/change-the-world-with-technology


Work experience



AI senior engineer

G4 technology company

FEB 2021 - JUL 2022
Taipei, Taiwan

Recruit AI researchers and RD. Planning and project management.

1. Plan project development and project process
2. Organize the paper-sharing club
3. Plan coding style python with team members
4. Lead newcomers to familiarize the project and development 

AI junior engineer

G4 technology company

Jan 2018 - Jan 2021
Taipei, Taiwan

Research and developing visual recognition and control, using AI to solve multi-dimensional feature problems that cannot be handled by traditional methods, and making the algorithm to achieve generalization and desired speed.

1. Develop vision algorithms
2. Research control algorithms of robotic-arm
3. Deploy algorithms to embedded machines (Nvidia AGX, Nvidia NX)
4. Track the latest cutting-edge journals and technologies

Project experiment

Robotic-arm random bin picking(Depth-Image)

Tensorflow、AlexNet、Cross entropy method

Traditional algorithms can only specify a single or few items after modeling. Using an AI algorithm, it can grasp various daily necessities or stationery (universal). As long as the width of the object gripper and a specific distance are met, 95% of daily life and household items can be grasped. In cooperation with the robotic arm team, the company's project has been able to grab a variety of daily necessities, including fried chicken legs and bundled wires (flexible objects).

Detecting the defects of industrial products

Tensorflow、Segmentation、Unet

Cooperate with well-known factories and manufacturers to detect the defects of various items. Traditional algorithms need to design multiple layers of logic and processing for complex images, but general-purpose neural networks can overcome this problem. Design a general-purpose model, so that the model (Segmentation) can be generalized and learned effectively. The objects include 17 kinds of items, such as tires, keyboards, PCB boards, metal welding objects, passive components, etc. Compared with traditional algorithms, it can effectively reduce development by 80%.

Robotic-arm automatic grasping (RGB-Image)

Tensorflow、Cross entropy method、Pybullet、Q-learning

The traditional algorithm relies on line scanning and surface scanning. After obtaining the point cloud, it performs a clamping calculation, path planning, and collision detection. The neural-like control method can directly use the color camera, save the expensive point cloud camera, and save all the aforementioned calculation processes, and dynamically execute the grasping strategy. At present, research in the virtual environment has achieved results. After transferring the model to the real world, it is expected to save 25% of the hardware cost of the gripping project and speed up the gripping time by 3 times. demo video:https://youtube.com/shorts/17ROS385zy4

Detect airplane

Pytorch、Yolov3、Jetson AGX、Jetson NX

Cooperate with a large domestic institution to detect aircraft on satellite images and actually deploy them on embedded machines after training.

Recognize nutrition label

Pytorch、OCR、crnn、scikit-image

Cooperate with well-known domestic retailers to test the nutrition labels and ingredients on bento boxes. The text recognition software on the market cannot detect special Chinese characters (words for nutrition), and the arrangement is too narrow. Therefore, according to the font used on the label, and the image characteristics of the actual scene, such as deformation and skewness, we provide customized products for customers. And passed the customer stress test: in addition to normal words, it can also issue warnings when there are defects or typos in the text, with an accuracy of 99%.

Detect bottles(RGB-Image、Depth-Image)

Tensorflow、Segmentation、Edge detection、Surface rebuild、Open3d

Transparent objects have always been a difficult problem in traditional algorithm detection. No matter the line scan, area scan, or depth camera, there will be refraction and transmission, and complete imaging cannot be achieved. Taking advantage of the neural-like feature of processing multi-dimensional information, a variety of models are used to restore the smooth point cloud on the transparent surface of the bottle, overcoming the problem that traditional algorithms cannot solve.

Point Cloud segmentation

Tensorflow、Mask RCNN

In the traditional method of point cloud calculation, the calculation time is too time-consuming, and the calculation is slow for the final prediction and grasping of traditional CAD. Combined with Instance segmentation to calculate point cloud, the efficiency is accelerated by 2~4 times.

Skills

Tools


  • Python
  • Tensorflow
  • Keras
  • Pytorch

OS


  • Ubuntu
  • ROS

Others


  • Git
  • Slack
  • Jira
  • MySQL

Education




National Yang Ming Chiao Tung University

Computer Science

2022/7 - present
Taipei, Taiwan

Research for reinforcement learning, robotic arm, computer vision, GAN, VR.

Institute for Information Industry

BigData Data Scientist Class

2017/2 - 2017/8

Learning Hadoop distributed systems, database planning, Linux operation, agile management.

Chang Jung Christian University

Bachelor of Business Administration

2012 - 2016

Organization and project management.

Lecture at Central University (2020/11 AI introduction)


Resume
Profile

Ivan Lee 李逸帆

Master of Computer Science

Hsinchu, Taiwan

       

Research and develop algorithms in my company. Cooperate with domestic and foreign manufacturers to use AI technology to solve problems that traditional algorithms cannot overcome. Completed or ongoing projects include defect detection, text recognition (OCR), airplane detection, random bin picking, bottle inspection, point cloud image cutting, and robotic arm grasping by reinforcement learning.

Cellphone: +886 0952152828
Gmail: [email protected]

Personal Web: https://www.ivan-lee.me/ 
Blog: https://medium.com/change-the-world-with-technology


Work experience



AI senior engineer

G4 technology company

FEB 2021 - JUL 2022
Taipei, Taiwan

Recruit AI researchers and RD. Planning and project management.

1. Plan project development and project process
2. Organize the paper-sharing club
3. Plan coding style python with team members
4. Lead newcomers to familiarize the project and development 

AI junior engineer

G4 technology company

Jan 2018 - Jan 2021
Taipei, Taiwan

Research and developing visual recognition and control, using AI to solve multi-dimensional feature problems that cannot be handled by traditional methods, and making the algorithm to achieve generalization and desired speed.

1. Develop vision algorithms
2. Research control algorithms of robotic-arm
3. Deploy algorithms to embedded machines (Nvidia AGX, Nvidia NX)
4. Track the latest cutting-edge journals and technologies

Project experiment

Robotic-arm random bin picking(Depth-Image)

Tensorflow、AlexNet、Cross entropy method

Traditional algorithms can only specify a single or few items after modeling. Using an AI algorithm, it can grasp various daily necessities or stationery (universal). As long as the width of the object gripper and a specific distance are met, 95% of daily life and household items can be grasped. In cooperation with the robotic arm team, the company's project has been able to grab a variety of daily necessities, including fried chicken legs and bundled wires (flexible objects).

Detecting the defects of industrial products

Tensorflow、Segmentation、Unet

Cooperate with well-known factories and manufacturers to detect the defects of various items. Traditional algorithms need to design multiple layers of logic and processing for complex images, but general-purpose neural networks can overcome this problem. Design a general-purpose model, so that the model (Segmentation) can be generalized and learned effectively. The objects include 17 kinds of items, such as tires, keyboards, PCB boards, metal welding objects, passive components, etc. Compared with traditional algorithms, it can effectively reduce development by 80%.

Robotic-arm automatic grasping (RGB-Image)

Tensorflow、Cross entropy method、Pybullet、Q-learning

The traditional algorithm relies on line scanning and surface scanning. After obtaining the point cloud, it performs a clamping calculation, path planning, and collision detection. The neural-like control method can directly use the color camera, save the expensive point cloud camera, and save all the aforementioned calculation processes, and dynamically execute the grasping strategy. At present, research in the virtual environment has achieved results. After transferring the model to the real world, it is expected to save 25% of the hardware cost of the gripping project and speed up the gripping time by 3 times. demo video:https://youtube.com/shorts/17ROS385zy4

Detect airplane

Pytorch、Yolov3、Jetson AGX、Jetson NX

Cooperate with a large domestic institution to detect aircraft on satellite images and actually deploy them on embedded machines after training.

Recognize nutrition label

Pytorch、OCR、crnn、scikit-image

Cooperate with well-known domestic retailers to test the nutrition labels and ingredients on bento boxes. The text recognition software on the market cannot detect special Chinese characters (words for nutrition), and the arrangement is too narrow. Therefore, according to the font used on the label, and the image characteristics of the actual scene, such as deformation and skewness, we provide customized products for customers. And passed the customer stress test: in addition to normal words, it can also issue warnings when there are defects or typos in the text, with an accuracy of 99%.

Detect bottles(RGB-Image、Depth-Image)

Tensorflow、Segmentation、Edge detection、Surface rebuild、Open3d

Transparent objects have always been a difficult problem in traditional algorithm detection. No matter the line scan, area scan, or depth camera, there will be refraction and transmission, and complete imaging cannot be achieved. Taking advantage of the neural-like feature of processing multi-dimensional information, a variety of models are used to restore the smooth point cloud on the transparent surface of the bottle, overcoming the problem that traditional algorithms cannot solve.

Point Cloud segmentation

Tensorflow、Mask RCNN

In the traditional method of point cloud calculation, the calculation time is too time-consuming, and the calculation is slow for the final prediction and grasping of traditional CAD. Combined with Instance segmentation to calculate point cloud, the efficiency is accelerated by 2~4 times.

Skills

Tools


  • Python
  • Tensorflow
  • Keras
  • Pytorch

OS


  • Ubuntu
  • ROS

Others


  • Git
  • Slack
  • Jira
  • MySQL

Education




National Yang Ming Chiao Tung University

Computer Science

2022/7 - present
Taipei, Taiwan

Research for reinforcement learning, robotic arm, computer vision, GAN, VR.

Institute for Information Industry

BigData Data Scientist Class

2017/2 - 2017/8

Learning Hadoop distributed systems, database planning, Linux operation, agile management.

Chang Jung Christian University

Bachelor of Business Administration

2012 - 2016

Organization and project management.

Lecture at Central University (2020/11 AI introduction)