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4 到 6 年
6 到 10 年
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National Taiwan University
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曾任
Data Engineer @BUBBLEYE | We're hiring!
2021 ~ 2022
Software Enginer
一個月內
Python
ETL
Web Scraping
待业中
正在积极求职中
全职 / 对远端工作有兴趣
4 到 6 年
National Taiwan University
電機工程學系
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Avatar of Wenchin Chuang.
Product Manager @SPIN.FASHION, a lablaco company
2021 ~ 现在
Product Manager
兩個月內
the design and development of SDK for Referrer Service 2.0, a SaaS solution incentivizing clerks based on sales and customer engagement actions. - Designed and implemented a dashboard for the company's queue system with Role-Based Access Control (RBAC) mechanisms, deploying it efficiently using Docker images on Kubernetes. - Introduced a notification service for the company's queue system powered by a rule engine, integrating it with Slack API. Established service-level objectives (SLOs) for queues to enhance service monitoring. - Played a pivotal role in coordinating and launching the company's inaugural offline tech event
Node.js
MySQL
.NET Core
就职中
目前会考虑了解新的机会
全职 / 对远端工作有兴趣
4 到 6 年
National Taiwan University
Finance Bachelor
Avatar of Chih Kai Yu.
Avatar of Chih Kai Yu.
Staff Backend Engineer @RE:DREAMER Taiwan Co. Ltd
2021 ~ 现在
Software Engineer
一個月內
Please visit Chih Kai Yu CV
Docker
ci/cd
c#
就职中
目前会考虑了解新的机会
全职 / 对远端工作有兴趣
6 到 10 年
National Taiwan University
Master of Science M.S. Computer Science
Avatar of Denny Lin.
Avatar of Denny Lin.
Software Engineer @Netskope
2023 ~ 现在
Senior Software Engineer
一個月內
upstream, normalizing by data analysis packages like Python Pandas Using ElasticSearch and Kibana for data tagging, aggregating and alerting Building a version control platform by Python Django for threat experts to easily trace their experiments and results Being in infra team of TrendMicro XDR endpoint data lake Maintaining 20+ Kubernetes clusters with thousands of nodes across AWS & Azure . Processing Data flow of GB/second level. Monitoring k8s, applications, databases by fluentd + prometheus + Grafana and deliver alerts accordingly Use Helm to manage plenty of Kubernetes plugins for databases, monitoring, networking, auotoscaling... etc
MySQL
Golang
Redis
就职中
目前没有兴趣寻找新的机会
全职 / 对远端工作有兴趣
4 到 6 年
National Taiwan University
Computer Science
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Expert Engineer @Shopee
2018 ~ 现在
一個月內
Python
PostgreSQL
MySQL
就职中
目前没有兴趣寻找新的机会
4 到 6 年
National Taiwan University
Computer and Information Sciences, General
Avatar of 吳兆洋.
Avatar of 吳兆洋.
Senior Engineer @TrendMicro
2021 ~ 现在
Software Engineer / Backend Engineer
一個月內
. Test microservices with unit tests. Develop IaC on Azure with Terraform. 四月七月 2021 Backend Developer • Edgecore Networks Developing services for Embedded Linux. The team leader of an Innovative Facebook project(XWF). Cowork with the Facebook team to develop a WLAN AAA. 十月四月 2019 EducationNational Taiwan University Electrical Engineering Skills Programming Language: Python Frameworks: Django/Django REST Framework/Celery CI/CD: GitHub Actions/AWS CodeBuild Container: Docker/ECS/Kubernetes Cloud: AWS/Azure IaC: Terraform/Terragrunt Log & Monitoring: ELK, Fluentd, CloudWatch, Grafana
Django REST Framework
RESTful APIs
Terraform
就职中
目前没有兴趣寻找新的机会
全职 / 对远端工作有兴趣
4 到 6 年
National Taiwan University
Electrical Engineering
Avatar of Sean Chang.
Avatar of Sean Chang.
Software Engineer @TSMC 台積電
2022 ~ 现在
Data Scientist
一個月內
張詠翔 (Sean Chang) Sr. Data Scientist Sr. Data Scientist at KKLab, KKBOX Group Taipei, Taiwan https://www.seanchang.space 技能 ML Fundamentals tree-based models (bagging, boosting) NLP-related models (LM, NER, SA, ...) Programming Languages Python JavaScript Scala Go Frontend React React Native Backend & Database Express Flask & FastAPI SQLAlchemy MongoDB MySQL DevOps Docker Kubernetes AWS Ansible Helm GitLab CI Distributed Computing Apache Spark ML Frameworks & MLOps Tensorflow Scikit-learn Spark ML mlflow spaCy Data Visualization Plotly D3.js seaborn bokeh Miscellaneous Scrapy & Beautiful Soup 工作經
Python
SQL
Kubernetes
就职中
目前没有兴趣寻找新的机会
全职 / 暂不考虑远端工作
4 到 6 年
National Taiwan University
Economics
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Jr. Programmer @德義資訊股份有限公司
2013 ~ 2015
Developer Team Leader, Architect, FullStack Developer
超過一年
Word
PowerPoint
Excel
就职中
全职 / 对远端工作有兴趣
6 到 10 年
National Taiwan University
Bachelor of Bio-Industrial Mechatronics Engineering

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职场能力评价定义

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问题解决能力
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三個月內
資料工程師 @ 華邦電子股份有限公司
Logo of 華邦電子股份有限公司.
華邦電子股份有限公司
2020 ~ 现在
Taipei City, Taiwan
专业背景
目前状态
就职中
求职阶段
专业
数据工程师, 数据科学家, DevOps/系统管理员
产业
大数据, 人工智能 / 机器学习, 半导体
工作年资
2 到 4 年
管理经历
我有管理 1~5 人的经验
技能
Python
Docker
Tensorfolw
Recommender Systems
NLP
Spark
Airflow
AWS
DevOps / CI / CD
语言能力
求职偏好
希望获得的职位
RD
预期工作模式
全职
期望的工作地点
远端工作意愿
对远端工作有兴趣
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学历
学校
National Taiwan University
主修科系
Mechanical Engineering
列印
User 6158 1471577752

Kao Chiang

NTU ME
#ML #NLP #Recommender

Skills


Software

> ML: Tensorflow, Keras, Xgboost,
          LightGBM, Pytorch
> NLP: Rasa, spaCy, Gensim, GluonNLP, GloVe

> Web: Flask, Django, Vue, SQL

> APP: Swift, Android Studio
> Others: Docker, docker-compose, Spark



Combination

There are lots of open source tools and platforms to help us to develop the project, but how to combine each tool or platform well (efficiency & security) is the point.
With some experience of organizing an whole project by myself, I am good at making good use of the newest technology to solve the problems.

Communication

Nowadays, it is quite easy to use many powerful tools, but mostly each of them are used in different platform or languange, and each of tools often include many knowledge which need to be considered various aspects. In some experience of system design, I

Projects


Chatbot

 An end-to-end chatbot platform which includes two part of main services. One is a friendly interface to edit corpus and dictionary for training machine-learning model; Another platform is a chatbot services include chat room for testing , logging for remarking incorrect response, and so on. Most of NLP models are applied in English or western language, but our clients are Chinese. So, I need to re-write many program flow to be suitable and well on Chinese .

Face Recognition

In a corporation with a security company, they want to include some AI in their security system in an exhibition. There are two main of conditions. One is to apply in department store to recognize and record the flow of people with gender and age instantly. The other one is an access control by recognize face of people.

To their demand, we make a device embedding two machine learning model to detect face and recognize age and gender.


Recommender System

It is lucky to participate the design of recommender system of a top e-commerce platform, and that is the first time I took "big data". Because of the amount of data, the data pipeline need to be very careful in the parallel computing. We use Apache Spark framework and Kubernetes to deploy our models. 

The recommender system is mainly combined by two models. One model is user-based model and the other is content-based model. We use fully-connected layer to combine.

简历
个人档案
User 6158 1471577752

Kao Chiang

NTU ME
#ML #NLP #Recommender

Skills


Software

> ML: Tensorflow, Keras, Xgboost,
          LightGBM, Pytorch
> NLP: Rasa, spaCy, Gensim, GluonNLP, GloVe

> Web: Flask, Django, Vue, SQL

> APP: Swift, Android Studio
> Others: Docker, docker-compose, Spark



Combination

There are lots of open source tools and platforms to help us to develop the project, but how to combine each tool or platform well (efficiency & security) is the point.
With some experience of organizing an whole project by myself, I am good at making good use of the newest technology to solve the problems.

Communication

Nowadays, it is quite easy to use many powerful tools, but mostly each of them are used in different platform or languange, and each of tools often include many knowledge which need to be considered various aspects. In some experience of system design, I

Projects


Chatbot

 An end-to-end chatbot platform which includes two part of main services. One is a friendly interface to edit corpus and dictionary for training machine-learning model; Another platform is a chatbot services include chat room for testing , logging for remarking incorrect response, and so on. Most of NLP models are applied in English or western language, but our clients are Chinese. So, I need to re-write many program flow to be suitable and well on Chinese .

Face Recognition

In a corporation with a security company, they want to include some AI in their security system in an exhibition. There are two main of conditions. One is to apply in department store to recognize and record the flow of people with gender and age instantly. The other one is an access control by recognize face of people.

To their demand, we make a device embedding two machine learning model to detect face and recognize age and gender.


Recommender System

It is lucky to participate the design of recommender system of a top e-commerce platform, and that is the first time I took "big data". Because of the amount of data, the data pipeline need to be very careful in the parallel computing. We use Apache Spark framework and Kubernetes to deploy our models. 

The recommender system is mainly combined by two models. One model is user-based model and the other is content-based model. We use fully-connected layer to combine.