Why accept reactive firefighting when AI can enable your DevOps pipelines to predict, adapt, and self-heal?
These instructor-led courses explore how AI enhances every phase of DevOps, including automating builds, optimizing deployments, detecting anomalies, and forecasting incidents before they escalate.
Training is available through online live sessions via interactive remote desktop or onsite in Nantes, with hands-on labs focused on real-world CI/CD systems, monitoring stacks, and cloud platforms.
Whether you are modernizing legacy infrastructure or building intelligent delivery pipelines from scratch, onsite sessions can be held at your facilities in Nantes or at a NobleProg training center designed for team-based learning.
Also known as AI-Assisted DevOps, Intelligent DevOps, or AI-Enhanced CI/CD, this course track helps teams future-proof their pipelines and move confidently from automation to autonomy.
NobleProg – Your Local Training Provider
Nantes, Zenith
NobleProg Nantes, 4 rue Edith Piaf, Saint-Herblain, france, 44821
In the Parc d'Ar Mor zone, near the Zénith.
Car : from the ring road, Porte de Chézine Exit> Boulevard du Zenith > Esplanade Georges Brassens (restaurants) > Rue Edith Piaf on the right. From the N444 road (Nantes > Lorient), Exit #1 > boulevard Marcel Paul > Rue Edith Piaf at the right.
Parking Zénith P1 (free). Once parked, you can recognize the building: it's one of the tree bulding with zinc frontage.
Bicycle: free indoor parking
Public transport :
Tramway R1, Schoelcher station + 10 mn by foot through commercial center Atlantis
Tramway R1, François Mitterrand stop + bus 50, stop at Saulzaie station or bus 71, stop at the Zénith station
Tramway R3, Marcel Paul station + bus 50, Saulzaie station
Chronobus C6, Hermeland station+ bus 71, Zénith station
Bus : lignes 50 (Saulzaie station) or 71 (Zénith station)
AI-driven rollout control leverages machine learning, pattern recognition, and adaptive decision models to enhance feature flag management and canary testing workflows.
This instructor-led training, available online or onsite, targets intermediate-level engineers and technical leads seeking to boost release reliability and refine feature exposure decisions through AI-based analysis.
Upon completing this course, participants will be able to:
Utilize AI-based decision models to evaluate the risk associated with exposing new features.
Automate canary analysis by leveraging performance, behavioral, and operational metrics.
Integrate intelligent scoring mechanisms into feature flag platforms.
Develop rollout strategies that dynamically adapt based on real-time data insights.
Course Format
Guided discussions enriched with real-world case studies.
Practical exercises focused on AI-enhanced rollout strategies.
Hands-on implementation within a simulated feature flag and canary testing environment.
Customization Options
For tailored content or integration of organization-specific tools, please reach out to us.
Self-healing automation involves utilizing intelligent systems to identify pipeline failures, determine root causes, and initiate real-time recovery actions.
This instructor-led, live training (available online or on-site) targets advanced-level professionals seeking to integrate AI-driven incident detection and automated remediation into their delivery pipelines.
Upon completing this course, participants will be able to:
Monitor pipelines using AI-based anomaly detection models.
Design automated recovery workflows to resolve failures instantly.
Implement intelligent feedback loops that prevent recurring issues.
Enhance overall resilience and reliability in CI/CD systems.
GitHub Copilot is an AI-powered coding assistant that aids in automating development tasks, including DevOps operations such as writing YAML configurations, GitHub Actions, and deployment scripts.
This instructor-led, live training (online or onsite) is aimed at beginner-level to intermediate-level professionals who wish to use GitHub Copilot to streamline DevOps tasks, improve automation, and boost productivity.
By the end of this training, participants will be able to:
Use GitHub Copilot to assist with shell scripting, configuration, and CI/CD pipelines.
Leverage AI code completion in YAML files and GitHub Actions.
Accelerate testing, deployment, and automation workflows.
Apply Copilot responsibly with an understanding of AI limitations and best practices.
Format of the Course also allows for the evaluation of participants.
Interactive lecture and discussion.
Lots of exercises and practice.
Hands-on implementation in a live-lab environment.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
AI-supported compliance monitoring is a discipline that applies intelligent automation to detect, enforce, and validate policy requirements across the software delivery lifecycle.
This instructor-led, live training (online or onsite) is aimed at intermediate-level professionals who wish to integrate AI-driven compliance controls into their CI/CD pipelines.
After completing this training, attendees will be equipped to:
Apply AI-based checks to identify compliance gaps during software builds.
Use intelligent policy engines to enforce regulatory, security, and licensing standards.
Detect configuration drift and deviations automatically.
Incorporate real-time compliance reporting into delivery workflows.
Format of the Course also allows for the evaluation of participants.
Instructor-guided presentations supported by practical examples.
Hands-on exercises focused on real-world CI/CD compliance scenarios.
Applied experimentation within a controlled DevSecOps lab environment.
Course Customization Options
If your organization requires tailored compliance integrations, please contact us to arrange.
CI/CD for AI represents a structured methodology for automating the packaging, testing, containerization, and deployment of models through continuous integration and delivery pipelines.
This instructor-led live training, available online or onsite, targets intermediate-level professionals aiming to automate end-to-end AI model delivery workflows leveraging Docker and CI/CD platforms.
Upon completion of the training, participants will be capable of:
Establishing automated pipelines for constructing and testing AI model containers.
Implementing version control and ensuring reproducibility throughout the model lifecycle.
Integrating automated deployment strategies for AI services.
Applying CI/CD best practices specifically tailored to machine learning operations.
Course Format
Instructor-guided presentations coupled with technical discussions.
Practical labs and hands-on implementation exercises.
Realistic CI/CD workflow simulations conducted within a controlled environment.
Course Customization Options
Should your organization require customized pipeline workflows or specific platform integrations, please contact us to tailor this course accordingly.
AI-driven test generation leverages machine learning techniques and tools to automate the creation of test cases and identify testing gaps.
This instructor-led live training, available online or onsite, targets advanced professionals seeking to apply AI methodologies to automatically generate tests and predict areas with inadequate coverage.
After completing this workshop, participants will be equipped to:
Utilize AI models to create effective unit, integration, and end-to-end test scenarios.
Analyze codebases using machine learning to uncover potential coverage blind spots.
Incorporate AI-based test generation into CI/CD workflows.
Refine test strategies by leveraging predictive failure analytics.
Course Format
Guided technical lectures enriched with expert insights.
Hands-on exercises and scenario-based practice sessions.
Applied experimentation within a controlled testing environment.
Course Customization Options
To tailor this training to your specific toolchain or workflows, please contact us to arrange.
Predictive build optimization involves leveraging machine learning to analyze build behaviors, thereby enhancing reliability, execution speed, and resource efficiency.
This instructor-led training session, available either online or on-site, is designed for engineering professionals with intermediate expertise who seek to enhance their build pipelines through automation, predictive analytics, and intelligent caching techniques powered by machine learning.
After completing this course, participants will be equipped to:
Utilize machine learning techniques to evaluate patterns in build performance.
Identify and forecast build failures by analyzing historical build logs.
Deploy machine learning-driven caching strategies to shorten build times.
Incorporate predictive analytics into current CI/CD workflows.
Course Structure
Guided lectures and interactive discussions led by an instructor.
Practical sessions centered on analyzing and modeling build data.
Hands-on implementation exercises within a simulated CI/CD environment.
Customization Options
To tailor this training to your specific toolchains or environments, please reach out to us to customize the program.
An AIOps pipeline constructed exclusively with open-source tools enables teams to architect cost-efficient and adaptable solutions for observability, anomaly detection, and intelligent alerting within production environments.
This instructor-led, live training (available online or onsite) is designed for advanced-level engineers who aim to build and deploy an end-to-end AIOps pipeline utilizing tools such as Prometheus, ELK, Grafana, and custom ML models.
Upon completion of this training, participants will be capable of:
Designing an AIOps architecture utilizing only open-source components.
Collecting and normalizing data from logs, metrics, and traces.
Applying ML models to identify anomalies and forecast incidents.
Automating alerting and remediation processes using open tooling.
Course Format
Interactive lectures and discussions.
Extensive exercises and practice sessions.
Hands-on implementation in a live laboratory environment.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
AI-driven QA automation elevates conventional testing by creating intelligent test cases, optimizing regression coverage, and embedding smart quality gates into CI/CD pipelines for scalable and reliable software delivery.
This instructor-led live training (available online or onsite) targets intermediate-level QA and DevOps professionals seeking to leverage AI tools to automate and scale quality assurance within continuous integration and deployment workflows.
Upon completion of this training, participants will be capable of:
Creating, prioritizing, and maintaining tests using AI-powered automation platforms.
Incorporating intelligent QA gates into CI/CD pipelines to mitigate regressions.
Utilizing AI for exploratory testing, defect prediction, and analysis of test flakiness.
Enhancing testing efficiency and coverage in rapid agile projects.
Course Format
Interactive lectures and discussions.
Extensive exercises and practical application.
Hands-on implementation in a live-lab environment.
Customization Options
To request a tailored training version of this course, please contact us to arrange your needs.
Enterprise AIOps platforms such as Splunk, Moogsoft, and Dynatrace deliver robust capabilities for identifying anomalies, correlating alerts, and automating responses across extensive IT environments.
This instructor-led, live training (available online or onsite) targets intermediate-level enterprise IT teams looking to integrate AIOps tools into their current observability stacks and operational workflows.
Upon completion of this training, participants will be able to:
Configure and integrate Splunk, Moogsoft, and Dynatrace into a cohesive AIOps architecture.
Correlate metrics, logs, and events across distributed systems using AI-driven analysis.
Automate incident detection, prioritization, and response through built-in and custom workflows.
Enhance performance, reduce MTTR, and improve operational efficiency at an enterprise scale.
Format of the Course also allows for the evaluation of participants.
Interactive lecture and discussion.
Numerous exercises and practice sessions.
Hands-on implementation within a live-lab environment.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
Large language models (LLMs) and autonomous agent frameworks such as AutoGen and CrewAI are transforming how DevOps teams automate critical tasks—including change tracking, test generation, and alert triage—by emulating human-like collaboration and decision-making processes.
This instructor-led live training (available online or onsite) is designed for advanced-level engineers who aim to design and implement DevOps automation workflows driven by LLMs and multi-agent systems.
Upon completion of this training, participants will be able to:
Integrate LLM-based agents into CI/CD workflows to enable intelligent automation.
Automate test generation, commit analysis, and change summaries using agent-driven approaches.
Coordinate multiple agents to triage alerts, generate appropriate responses, and provide actionable DevOps recommendations.
Develop secure and maintainable agent-powered workflows utilizing open-source frameworks.
Course Format
Interactive lectures and discussions.
Extensive exercises and hands-on practice.
Practical implementation within a live-lab environment.
Customization Options
To request a tailored version of this course, please contact us to arrange your specific needs.
AIOps (Artificial Intelligence for IT Operations) is increasingly being used to predict incidents before they occur and automate root cause analysis (RCA) to minimize downtime and accelerate resolution.
This instructor-led, live training (online or onsite) is aimed at advanced-level IT professionals who wish to implement predictive analytics, automate remediation, and design intelligent RCA workflows using AIOps tools and machine learning models.
By the end of this training, participants will be able to:
Build and train ML models to detect patterns leading to system failures.
Automate RCA workflows based on multi-source log and metric correlation.
Integrate alerting and remediation processes into existing platforms.
Deploy and scale intelligent AIOps pipelines in production environments.
Format of the Course also allows for the evaluation of participants.
Interactive lecture and discussion.
Lots of exercises and practice.
Hands-on implementation in a live-lab environment.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
DevSecOps with AI refers to the integration of artificial intelligence into DevOps workflows to proactively identify vulnerabilities, enforce security standards, and automate remediation actions across the software delivery lifecycle.
This instructor-led, live training (available online or onsite) targets intermediate-level DevOps and security professionals seeking to leverage AI-driven tools and methodologies to bolster security automation within their development and deployment pipelines.
Upon completion of this training, participants will be able to:
Integrate AI-powered security tools into CI/CD pipelines.
Utilize AI-enhanced static and dynamic analysis to identify issues at an earlier stage.
Automate the detection of secrets, scanning of code vulnerabilities, and analysis of dependency risks.
Implement proactive threat modeling and policy enforcement through intelligent techniques.
Format of the Course also allows for the evaluation of participants.
Interactive lecture and discussion.
Numerous exercises and practical application.
Hands-on implementation in a live-lab environment.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
AI-driven deployment orchestration is a methodology that leverages machine learning and automation to guide rollout strategies, detect anomalies, and trigger automatic rollback when necessary.
This instructor-led, live training (available online or onsite) is designed for intermediate-level professionals who wish to optimize deployment pipelines using AI-powered decision-making and resilience capabilities.
Upon completion of this training, participants will be able to:
Implement AI-assisted rollout strategies for safer deployments.
Predict deployment risk using machine learning–driven insights.
Integrate automated rollback workflows based on anomaly detection.
Enhance observability to support intelligent orchestration.
Course Format
Instructor-led demonstrations with technical deep dives.
Hands-on scenarios focused on deployment experimentation.
Prometheus and Grafana are the leading tools for observability in modern infrastructure. By integrating machine learning, these platforms gain predictive and intelligent capabilities that enable automated operational decision-making.
This instructor-led live training, available online or onsite, is designed for intermediate-level observability professionals aiming to modernize their monitoring infrastructure. The course focuses on integrating AIOps practices using Prometheus, Grafana, and machine learning techniques.
Upon completion of this training, participants will be able to:
Configure Prometheus and Grafana to provide comprehensive observability across systems and services.
Collect, store, and visualize high-quality time series data effectively.
Apply machine learning models for both anomaly detection and forecasting.
Create intelligent alerting rules grounded in predictive insights.
Course Format
Interactive lectures accompanied by group discussions.
Extensive exercises and practical practice sessions.
Hands-on implementation within a live-lab environment.
Course Customization Options
For customized training requests, please contact us to arrange a tailored program.
AI for DevOps involves applying artificial intelligence to enhance continuous integration, testing, deployment, and delivery processes through intelligent automation and optimization.
This instructor-led live training, available online or onsite, targets intermediate DevOps professionals looking to integrate AI and machine learning into their CI/CD pipelines to boost speed, accuracy, and quality.
Upon completing this training, participants will be able to:
Integrate AI tools into CI/CD workflows for intelligent automation.
Apply AI-based testing, code analysis, and change impact detection.
Optimize build and deployment strategies using predictive insights.
Implement traceability and continuous improvement using AI-enhanced feedback loops.
Format of the Course also allows for the evaluation of participants.
Interactive lecture and discussion.
Plenty of exercises and practice.
Hands-on implementation in a live-lab environment.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
AIOps (Artificial Intelligence for IT Operations) is a practice that applies machine learning and analytics to automate and improve IT operations, particularly in the areas of monitoring, incident detection, and response.
This instructor-led, live training (online or onsite) is aimed at intermediate-level IT operations professionals who wish to implement AIOps techniques to correlate metrics and logs, reduce alert noise, and improve observability through intelligent automation.
By the end of this training, participants will be able to:
Understand the principles and architecture of AIOps platforms.
Correlate data across logs, metrics, and traces to identify root causes.
Reduce alert fatigue through intelligent filtering and noise suppression.
Use open-source or commercial tools to monitor and respond to incidents automatically.
Format of the Course also allows for the evaluation of participants.
Interactive lecture and discussion.
Lots of exercises and practice.
Hands-on implementation in a live-lab environment.
Course Customization Options
To request a customized training for this course, please contact us to arrange.
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