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軟體工程師 @Wistron NeWeb Corporation 啟碁科技股份有限公司
2023 ~ 2023
軟體工程師
Within two months
Word
PowerPoint
Excel
Studying
Open to opportunities
Full-time / Interested in working remotely
4-6 years
國立中正大學(National Chung Cheng University)
Computer Science and Information Engineering
Avatar of 陳昱希.
Avatar of 陳昱希.
Computer Vision Engineer @Academia Sinica
2015 ~ Present
Computer Vision Engineer
Within one month
陳昱希 Computer Vision Engineer Yu-Hsi Chen has rich experience in developing computer vision and machine learning algorithms. In his recent work at Academia Sinica, he has focused on using machine learning to solve traditional computer vision and image / video processing problems. His developed NeighborTrack is a state-of-the-art single object tracking system in the field. During his school days, he used verilog on FPGA to implement the 3A system of the camera. website: Yu-hsi Chen (franktpmvu.github.io) Taipei City, Taiwan Yu-hsi Chen (franktpmvu.github
Provides Feedback
Communication
Precision
Open to opportunities
Full-time / Interested in working remotely
6-10 years
LUNGHWA university
Master of Science
Avatar of DboyLiao.
Avatar of DboyLiao.
Principal Engineer @Coretronic Corporation, 中強光電
2020 ~ 2022
Machine Learning Engineer
Within one month
Senior Software Developer, Wuduker Inc., JanuaryOctober 2020 iSchedule, a preference aware scheduling system. Responsible for designing RESTful API, database schema and core scheduling solver Anomaly detection system with Deep Metric Learning Develop deep learning model with PyTroch and PyTorch-Lightning Consulting service. Including Spark pipeline optimization, deep learning model development and general Python/C++ development Machine Learning Engineer, Pinkoi Inc., DecemberDecember 2019 Recommendation System, including item-based/store-based recommendation, keyword suggestion, making significant improvement on recommendation quality and coverage. Machine Learning Algorithm Design Data Pipeline, including on-site advertising and
Python
Linux
C++
Employed
Full-time / Interested in working remotely
6-10 years
國立台灣大學
經濟學
Avatar of the user.
Avatar of the user.
Past
Senior Software Engineer @DOINT
2021 ~ 2023
Software engineer, Image Processing engineer, Algorithm engineer
Within three months
Python
Machine Learning
C++
Unemployed
Full-time / Interested in working remotely
6-10 years
National Taiwan University
Communication Engineering
Avatar of YEN-TING CHEN.
Avatar of YEN-TING CHEN.
Research Assistant of National Taiwan University @National Taiwan University
2023 ~ Present
Graduate research assistant
Within six months
YEN-TING CHEN (陳彥廷) I am a graduate student in the Department of Psychology at National Taiwan University ( NTU). For me, diving into psychometrics and exploring data with reasonable statistical method is to clarify a new world of understanding people around us. Whether it's a quirky little issue or a big, serious one, I've got curiosity and grabbed my attention to figure out problems using the tools or theories of psychometrics and data analysis . Right now, I am turning curiosity into discoveries in the wild world of Psychology and All kinds of Data
EDA
Python Programming
R Programming
Studying
Part-time / Interested in working remotely
4-6 years
National Taiwan University
Psychometrics (Division of Psychology), Methodology (Division of Psychology)
Avatar of Benjamin Deporte.
Avatar of Benjamin Deporte.
AI, Machine Learning and Data Manager @IRT Saint Exupery
2021 ~ Present
Data Analyst、Data Scientist、AI Engineer、Project Manager
Within two months
Benjamin Deporte [email protected] AI, Machine Learning and Data Officer Innovative AI/ML seasoned leader with strong mathematical background and hands-on knowledge of machine learning algorithms and best practices. Specialized in Cybersecurity, Healthcare and Aerospace. Demonstrated driving business value through 10+ years of experience within different businesses, in direct management or thought leadership roles. Leadership, networking, communication and language skills. Skills Expertise in Artificial Intelligence and Machine Learning Specialization in Cybersecurity, Healthcare and Aerospace. Leadership abilities, networking and communication skills Business acumen in multicultural, global organizations Work
Proficiency in Artificial Intelligence and Machine Learning
Knowledgeable in cybersecurity
Project and Account management
Employed
Full-time / Interested in working remotely
6-10 years
Télécom Paris
Cybersecurity
Avatar of Eddy Chen.
Avatar of Eddy Chen.
機器學習工程師 @日新軟體股份有限公司
2021 ~ Present
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
Within six months
focus mainly on object detection, sensor fusion and sensor calibration. 3+ years of experience in machine learning. Used to conduct research in medical AI projects and possess experience in implement real-world end-to-end ML project . Skills Programming Languages Python C++ SQL Machine Learning TensorFlow Pytorch Scikit-learn Matplotlib Others FastAPI Docker Redis Linux Certification Taiwan AI Academy - AI Technical Professionals Program NVIDIA DLI Certificate – Applications of AI for Anomaly Detection Work Experience Machine Learning Engineer NEUTEC • MayPresent Develop, optimize and maintain the machine learning algorithm for internal process automation. Deploy machine
AI & Machine Learning
Image Processing
python
Employed
Full-time / Interested in working remotely
4-6 years
國立臺北科技大學
機電整合所
Avatar of Kishan Gondaliya.
Avatar of Kishan Gondaliya.
AI & Embedded Systems Consultant @Self Employed
2021 ~ Present
Deep Learning Engineer
More than one year
Kishan Gondaliya Experienced embedded software engineer working on Embedded Systems and Deep Learning to enable vision and voice-based machine learning algorithms on low-power FPGA and edge embedded devices. ~8 years of experience consists in writing, debugging, and optimizing software/firmware for embedded [email protected] Ahmedabad, Gujarat, India Skillset Languages: Frameworks: Dev Tools: HW Platform: Cloud (GCP): Cloud (AWS): Other: C, Python, C++ Tensorflow (TFlite, TFmicro), Keras, Caffe, Darknet Anaconda, Git, Gerrit, Perforce, Pycharm, CVS, Jira, Confluence Google Coral TPU, Lattice ECP5, U+, Crosslin-NX FPGA, Raspberry Pi, Intel Movidius, NVIDIA
Deep Learning
machine learning
aws
Employed
Full-time / Interested in working remotely
4-6 years
Charotar University of Science & Technology
Electronics & Communication
Avatar of the user.
Avatar of the user.
Data Scientist | Associate Researcher @China Engineering Consultants, Inc.
2020 ~ Present
資料分析師
More than one year
Python
SQL/MySQL
SQL Server
Employed
Full-time / Interested in working remotely
6-10 years
國立東華大學(National Dong Hwa University)
應用數學研究所
Avatar of Hsin-Ping Wang.
Avatar of Hsin-Ping Wang.
Data Analytics Project Manager @Construction and Disaster Prevention Research Center
2015 ~ Present
Data Scientist
More than one year
urban planning/environmental protection/preservation. ‧ Acted as a business analyst to acquire clients' needs, initiated planning and utilized the cutting edge of methodologies in the field to improve the quality of the data analysis model. ‧ Used Python programming skills to process data cleaning and build a machine learning model with clementine to reduce 80% time of the manual process. ‧ Acted as a data scientist to lead the team to complete data model building with abundant knowledge of machine learning algorithms, to have an eye to capture abnormal numbers in the reports to assist the team
Adaptability
Sensitive
Good Communication
Employed
Full-time / Interested in working remotely
4-6 years
FENG CHIA UNIVERSITY
Master of Urban Planning and Spatial Information

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Data Scientist & Machine learning Engineer
Freelance
2021 ~ 2021
Portugal
Professional Background
Current status
Job Search Progress
Professions
Machine Learning Engineer
Fields of Employment
Work experience
2-4 years work experience (1-2 years relevant)
Management
None
Skills
Tensorflow2.0
Keras
Python 3
Scikit-Learn
Pandas
NumPy
Jupyter Notebook
Google Colab
Heroku
Docker
streamlit
Django
Matplotlib
SQL
Time Series Forecasting
Languages
Spanish
Native or Bilingual
English
Professional
Job search preferences
Positions
Machine Learning Engineer
Job types
Full-time
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Remote
Interested in working remotely
Freelance
Yes, I freelance in my spare time
Educations
School
Zero To Mastery Academy
Major
Tensorflow developer
Print

Joel Calanche

Python developer & Machine Learning Engineer

  Portugal, Olhao

Phone: +351-924701160

email : [email protected]




SUMMARY


* 3 years of industry Experience with 2 years of Experience as a Data Scientist using ML Algorithms and Nature language Processing

* Working Experience & Extensive Knowledge in Python with libraries Such as Sklearn, TensorFlow, Numpy, Pandas, Matplotlib, Seaborn, spaCy, Nltk, OpenCv, Pyspark.

* Used Machine learning and Deep learning skills to successfully deliver a Customer segmentation Project.

* Worked on tools like - PyCharm, Visual studio, Jupyter Notebook, Sublime text. Google Colab Notebook

* Have Excellent communication and agile team work experience


  https://www.linkedin.com/in/joelcalanche96/

    https://github.com/Joelcalanche


Project Portfolio: http://joelcalanche96portafolio.pythonanywhere.com/portfolio/

Machine learning Skills


  • Tensorflow2.0 
  • Hyper-parameter tunning
  • Boto 3                                      
  • Keras
  • Python 3
  • Scikit-Learn
  • Pandas
  • NumPy
  • Jupyter Notebook
  • Flask
  • Selenium
  • Docker
  • streamlit
  • Django
  • Matplotlib
  • SQL
  • Time Series Forecasting

Data Engineer Skills


  • Kafka
  • Hadoop
  • Azure Data lake
  • Amazon S3
  • Spark
  • Flink
  • Spark Streaming
  • Kineses
  • Airflow
  • Dask
  • AWS "sage maker"
  • TFX
  • Mlops pipelines design


Languages


  • Spanish — Native
  • English — Profesional

DATABASES


  • SQL, PostgreSQL, MySQL, Big Query


    Cloud: AWS, GCP



I A Projects &  Applications


Data Scientist Model Builder at FULL VENUE
A company that performs customer segmentation, through artificial intelligence algorithms based on the previous behavior of customers, for the ecommerce,  ticketing, advertising and events industries to  analyze and optimize marketing campaigns.

Roles & Responsibilities:

* Actively Involved in daily standup calls task assigned.

* Merge data from multiple databases and sources using GOOGLE BIGQUERY, MYSQL, 

* Optimized & Pre-processed  raw  data.

* Feature building and data validation

* Exploratory data Analysis

* Performed Feature Selection on data using Python libraries like NumPy,Pandas,Seaborn.

* Performed Feature Engineering on data using Python libraries like NumPy,Pandas,Seaborn.

* Creating Clusters using K-Means, DBSCAN algotirithm.

* Built and Trained  supervised  Ml model like Random forest classifier and Dense Neural Network, using Scikit-learn

and Tensorflow libraries

* Analyzed Model Prediction, accuracy, using Classification Reports, Confusion Matrix, AUC Score

* Building machine learning pipelines using vertex ai from Google cloud platform

* Monitoring dashboard  using Google studio

April 2022- Present

Deep Learning   (POC)

NLP project: "NLP APP" for Deep Search Labs

Proof of concept for Deep Search Lab for the development of an application that allows the analysis of BBC news with NLP techniques, such as sentiment analysis, entities recognition, and content base recommendation system

Roles & Responsibilities:

* Analyze requirements

* Creation of ETL pipelines using Beautifullsoup , and pandas libraries 

*  Automation using Airflow and docker

* Text preprocessing, tokenization and lemmatization

* Model selection and construction using NLTK and Spacy libraries

* Creation of a web application using Streamlit for the visualization of tasks, deployment

* Unit Testing the data on custom data sets.

December  2021- January 2022

Deep Learning   

NLP project: "SKIMlLIT"  for Zero To Mastery Academy  (Project to obtain certificate)
Developer of a NLP model to classify abstract sentences into the role they play (e.g. objective, methods, results, etc) to enable researchers to skim through the literature (hence SkimLit ) and dive deeper when necessary. Feature engineering is used; hybrid models, different embedding forms(multi data models).  A f1 score of 0.79 was reached in test dataset.

  • In this project, the deep learning model behind the 2017 PubMed 200k RCT paper: A Dataset for Sequential Sentence Classification in Medical Abstracts has been replicated.
  • Using the so-called PubMed 200k RCT dataset consisting of ~200,000 abstracts of labeled randomized controlled trials (RCTs).
  • The goal of the dataset was to explore the ability of NLP models to classify sentences that appear in sequential order.
  • In other words, given the summary of an RCT, determine what role each sentence plays in the summary


september 2021 - october 2021

Deep Learning 

Computer vision project: "FOOD VISION" for Zero To Mastery Academy  (Project to obtain certificate)
Developer of a model based on convolutional neural networks with Tensorflow that allows identifying between 101 different classes of food dishes, using EffcientNet (transfer-learning) and new mixed precision features of tensorflow. 75,750 images (750 per class) were used for the training set and 25,250 (250 per class) images for the test set, an accuracy of 0.80 was reached  in test dataset .

The goal of beating DeepFood, a 2016 paper which used a Convolutional Neural Network trained for 2-3 days to achieve 77.4% top-1 accuracy.


  • image preprocessing and normalization is performed.
  • to start the selection of the model only 10% of the data have been used.
  • construction of different structures based on convolutional neural networks is carried out.
  • Feature extraction is performed.
  • Data augmentation is performed.

  • Transfer learning is used and then fine tuning is carried out.
  • and finally a Scaling up is done using 100% of the data,
  • different models are compared using Scikitlearn's classification report function.


may 2021 - august 2021

Machine Learning  

End-to-end-bulldozer-price-regression for Zero To Mastery Academy  (Project to obtain certificate)

Developer of a predictive random forest regression model with Scikit-learn and Python to estimate the cost of sales of heavy machinery(bulldozer), based on time series data. Exploratory data analysis ,data cleaning, feature engineering, model selection, evaluation metrics and feature importance. The data is from the Kaggle Bluebook for Bulldozers competition. A r square value of 0.87 was achieved  in test dataset .

march 2021 - april 2021

Machine Learning

 Heart disease detection (binary classification project)

Developer of a logistic regression model with Scikit-learn for binary classification of patients with heart diseases, based on previous medical récords(14 different medical features). EDA, model selection, feature importance, metrics evaluation: ROC curve and AUC score, confusion matrix, accuracy, recall and f1 with cross validation. the model achieved a value of f1 of 0.88  in test dataset .

january 2021 - febrary2021

Machine Learning/Electrical Engineer in CORPOELEC

 

Electrical engineer, worked for the state electric company, carried out static and dynamic studies, developing models to simulate fault conditions in elements of the electrical system such as power switches, overvoltage and stability studies were carried out, and models were also created "time series forecasting" to forecast the future demand for electrical energy in the system, using recurrent neural networks, LSTM.

Apr 2018 - Dec 2019

Education


Zero To Mastery Academy

Tensorflow developer

2021 - 2021

Zero To Mastery Academy

Machine Learning , Data Science

2021 - 2021

Universidad Nacional Experimental Politécnica

Bs in Electrical Engineering

2013 - 2019

Resume
Profile

Joel Calanche

Python developer & Machine Learning Engineer

  Portugal, Olhao

Phone: +351-924701160

email : [email protected]




SUMMARY


* 3 years of industry Experience with 2 years of Experience as a Data Scientist using ML Algorithms and Nature language Processing

* Working Experience & Extensive Knowledge in Python with libraries Such as Sklearn, TensorFlow, Numpy, Pandas, Matplotlib, Seaborn, spaCy, Nltk, OpenCv, Pyspark.

* Used Machine learning and Deep learning skills to successfully deliver a Customer segmentation Project.

* Worked on tools like - PyCharm, Visual studio, Jupyter Notebook, Sublime text. Google Colab Notebook

* Have Excellent communication and agile team work experience


  https://www.linkedin.com/in/joelcalanche96/

    https://github.com/Joelcalanche


Project Portfolio: http://joelcalanche96portafolio.pythonanywhere.com/portfolio/

Machine learning Skills


  • Tensorflow2.0 
  • Hyper-parameter tunning
  • Boto 3                                      
  • Keras
  • Python 3
  • Scikit-Learn
  • Pandas
  • NumPy
  • Jupyter Notebook
  • Flask
  • Selenium
  • Docker
  • streamlit
  • Django
  • Matplotlib
  • SQL
  • Time Series Forecasting

Data Engineer Skills


  • Kafka
  • Hadoop
  • Azure Data lake
  • Amazon S3
  • Spark
  • Flink
  • Spark Streaming
  • Kineses
  • Airflow
  • Dask
  • AWS "sage maker"
  • TFX
  • Mlops pipelines design


Languages


  • Spanish — Native
  • English — Profesional

DATABASES


  • SQL, PostgreSQL, MySQL, Big Query


    Cloud: AWS, GCP



I A Projects &  Applications


Data Scientist Model Builder at FULL VENUE
A company that performs customer segmentation, through artificial intelligence algorithms based on the previous behavior of customers, for the ecommerce,  ticketing, advertising and events industries to  analyze and optimize marketing campaigns.

Roles & Responsibilities:

* Actively Involved in daily standup calls task assigned.

* Merge data from multiple databases and sources using GOOGLE BIGQUERY, MYSQL, 

* Optimized & Pre-processed  raw  data.

* Feature building and data validation

* Exploratory data Analysis

* Performed Feature Selection on data using Python libraries like NumPy,Pandas,Seaborn.

* Performed Feature Engineering on data using Python libraries like NumPy,Pandas,Seaborn.

* Creating Clusters using K-Means, DBSCAN algotirithm.

* Built and Trained  supervised  Ml model like Random forest classifier and Dense Neural Network, using Scikit-learn

and Tensorflow libraries

* Analyzed Model Prediction, accuracy, using Classification Reports, Confusion Matrix, AUC Score

* Building machine learning pipelines using vertex ai from Google cloud platform

* Monitoring dashboard  using Google studio

April 2022- Present

Deep Learning   (POC)

NLP project: "NLP APP" for Deep Search Labs

Proof of concept for Deep Search Lab for the development of an application that allows the analysis of BBC news with NLP techniques, such as sentiment analysis, entities recognition, and content base recommendation system

Roles & Responsibilities:

* Analyze requirements

* Creation of ETL pipelines using Beautifullsoup , and pandas libraries 

*  Automation using Airflow and docker

* Text preprocessing, tokenization and lemmatization

* Model selection and construction using NLTK and Spacy libraries

* Creation of a web application using Streamlit for the visualization of tasks, deployment

* Unit Testing the data on custom data sets.

December  2021- January 2022

Deep Learning   

NLP project: "SKIMlLIT"  for Zero To Mastery Academy  (Project to obtain certificate)
Developer of a NLP model to classify abstract sentences into the role they play (e.g. objective, methods, results, etc) to enable researchers to skim through the literature (hence SkimLit ) and dive deeper when necessary. Feature engineering is used; hybrid models, different embedding forms(multi data models).  A f1 score of 0.79 was reached in test dataset.

  • In this project, the deep learning model behind the 2017 PubMed 200k RCT paper: A Dataset for Sequential Sentence Classification in Medical Abstracts has been replicated.
  • Using the so-called PubMed 200k RCT dataset consisting of ~200,000 abstracts of labeled randomized controlled trials (RCTs).
  • The goal of the dataset was to explore the ability of NLP models to classify sentences that appear in sequential order.
  • In other words, given the summary of an RCT, determine what role each sentence plays in the summary


september 2021 - october 2021

Deep Learning 

Computer vision project: "FOOD VISION" for Zero To Mastery Academy  (Project to obtain certificate)
Developer of a model based on convolutional neural networks with Tensorflow that allows identifying between 101 different classes of food dishes, using EffcientNet (transfer-learning) and new mixed precision features of tensorflow. 75,750 images (750 per class) were used for the training set and 25,250 (250 per class) images for the test set, an accuracy of 0.80 was reached  in test dataset .

The goal of beating DeepFood, a 2016 paper which used a Convolutional Neural Network trained for 2-3 days to achieve 77.4% top-1 accuracy.


  • image preprocessing and normalization is performed.
  • to start the selection of the model only 10% of the data have been used.
  • construction of different structures based on convolutional neural networks is carried out.
  • Feature extraction is performed.
  • Data augmentation is performed.

  • Transfer learning is used and then fine tuning is carried out.
  • and finally a Scaling up is done using 100% of the data,
  • different models are compared using Scikitlearn's classification report function.


may 2021 - august 2021

Machine Learning  

End-to-end-bulldozer-price-regression for Zero To Mastery Academy  (Project to obtain certificate)

Developer of a predictive random forest regression model with Scikit-learn and Python to estimate the cost of sales of heavy machinery(bulldozer), based on time series data. Exploratory data analysis ,data cleaning, feature engineering, model selection, evaluation metrics and feature importance. The data is from the Kaggle Bluebook for Bulldozers competition. A r square value of 0.87 was achieved  in test dataset .

march 2021 - april 2021

Machine Learning

 Heart disease detection (binary classification project)

Developer of a logistic regression model with Scikit-learn for binary classification of patients with heart diseases, based on previous medical récords(14 different medical features). EDA, model selection, feature importance, metrics evaluation: ROC curve and AUC score, confusion matrix, accuracy, recall and f1 with cross validation. the model achieved a value of f1 of 0.88  in test dataset .

january 2021 - febrary2021

Machine Learning/Electrical Engineer in CORPOELEC

 

Electrical engineer, worked for the state electric company, carried out static and dynamic studies, developing models to simulate fault conditions in elements of the electrical system such as power switches, overvoltage and stability studies were carried out, and models were also created "time series forecasting" to forecast the future demand for electrical energy in the system, using recurrent neural networks, LSTM.

Apr 2018 - Dec 2019

Education


Zero To Mastery Academy

Tensorflow developer

2021 - 2021

Zero To Mastery Academy

Machine Learning , Data Science

2021 - 2021

Universidad Nacional Experimental Politécnica

Bs in Electrical Engineering

2013 - 2019