Coursera

Eyes on AI - Computer Vision Engineering 专业证书

Coursera

Eyes on AI - Computer Vision Engineering 专业证书

Build and Deploy Real-World Vision AI.

Develop computer vision systems from dataset preparation to model optimization and deployment.

访问权限由 New York State Department of Labor 提供

获得职业证书,展示您的专业知识
中级 等级

推荐体验

4 周 完成
在 10 小时 一周
灵活的计划
自行安排学习进度
获得职业证书,展示您的专业知识
中级 等级

推荐体验

4 周 完成
在 10 小时 一周
灵活的计划
自行安排学习进度

您将学到什么

  • Optimize deep learning workflows using PyTorch, GPU performance analysis, and efficient data pipelines

  • Diagnose model failures and improve accuracy using metrics, calibration, and experiment analysis

  • Deploy optimized AI models to edge environments and production inference pipelines

要了解的详细信息

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授课语言:英语(English)
最近已更新!

March 2026

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  • 通过 Coursera 获得雇主认可的证书

专业认证 - 4门课程系列

Optimizing and Deploying Computer Vision Models

Optimizing and Deploying Computer Vision Models

第 1 门课程, 小时

您将学到什么

  • Analyze vision datasets and apply augmentation to improve computer vision model performance

  • Evaluate model behavior using performance metrics and failure analysis to identify weaknesses

  • Diagnose training issues and reproduce AI experiments using structured workflows and ablation studies

您将获得的技能

类别:Feature Engineering
类别:Workflow Management
类别:Model Deployment
类别:MLOps (Machine Learning Operations)
类别:AI Workflows
类别:Data Preprocessing
类别:Data Analysis
类别:Deep Learning
类别:Data Quality
类别:Computer Vision
类别:Model Evaluation
类别:Performance Metric
类别:Data Transformation
类别:Experimentation
类别:Performance Analysis
类别:Failure Analysis
类别:Data Manipulation
类别:Exploratory Data Analysis
类别:Technical Communication
类别:Image Analysis
Optimizing AI Workflows and Deploying Edge Models

Optimizing AI Workflows and Deploying Edge Models

第 2 门课程, 小时

您将学到什么

  • Implement and optimize neural network components using PyTorch tensor operations and automatic differentiation

  • Analyze ML workflow performance using experiment metrics, visualization tools, and GPU utilization insights

  • Build efficient data pipelines and deploy optimized AI models to edge environments

您将获得的技能

类别:Performance Tuning
类别:MLOps (Machine Learning Operations)
类别:Tensorflow
类别:Deep Learning
类别:Model Evaluation
类别:Debugging
类别:Dataflow
类别:Data Processing
类别:Resource Utilization
类别:Artificial Neural Networks
类别:Data Pipelines
类别:Data Manipulation
类别:Model Deployment
类别:Performance Analysis
类别:Grafana
类别:PyTorch (Machine Learning Library)
类别:Performance Metric
类别:AI Workflows
Fine-Tuning and Evaluating Vision AI Models

Fine-Tuning and Evaluating Vision AI Models

第 3 门课程, 小时

您将学到什么

  • Apply transfer learning and learning-rate analysis to improve computer vision model accuracy

  • Evaluate model calibration, object detection metrics, and dataset annotation quality

  • Diagnose segmentation errors and refine model outputs using post-processing techniques

您将获得的技能

类别:Performance Analysis
类别:Statistical Modeling
类别:Image Analysis
类别:Statistical Machine Learning
类别:Verification And Validation
类别:Data Quality
类别:Quality Assessment
类别:Transfer Learning
类别:Performance Metric
类别:Predictive Modeling
类别:Model Evaluation
类别:Performance Measurement
类别:Computer Vision
类别:Model Deployment
类别:Performance Tuning
类别:Applied Machine Learning
类别:Data Validation
类别:Convolutional Neural Networks
Advancing Your Career in Computer Vision Engineering

Advancing Your Career in Computer Vision Engineering

第 4 门课程, 小时

您将学到什么

  • Identify career paths and responsibilities in computer vision and machine learning engineering roles

  • Translate AI project work into portfolio-ready artifacts and resume achievements

  • Explain technical decisions, model performance, and engineering trade-offs clearly in interviews and professional discussions

您将获得的技能

类别:Professional Development
类别:Technical Communication
类别:Technical Writing
类别:Artificial Intelligence and Machine Learning (AI/ML)
类别:Data Preprocessing
类别:Image Analysis
类别:Professional Networking
类别:Storytelling
类别:Computer Vision
类别:Convolutional Neural Networks
类别:Model Evaluation
类别:Machine Learning Methods
类别:Model Deployment
类别:Transfer Learning

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Professionals from the Industry
366 门课程51,989 名学生

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人们为什么选择 Coursera 来帮助自己实现职业发展

Felipe M.

自 2018开始学习的学生
''能够按照自己的速度和节奏学习课程是一次很棒的经历。只要符合自己的时间表和心情,我就可以学习。'

Jennifer J.

自 2020开始学习的学生
''我直接将从课程中学到的概念和技能应用到一个令人兴奋的新工作项目中。'

Larry W.

自 2021开始学习的学生
''如果我的大学不提供我需要的主题课程,Coursera 便是最好的去处之一。'

Chaitanya A.

''学习不仅仅是在工作中做的更好:它远不止于此。Coursera 让我无限制地学习。'

² 职业发展(例如升职加薪)基于美国 2021 年 Cousera 学生结果调查的结果。