[{"data":1,"prerenderedAt":810},["ShallowReactive",2],{"/en-us/blog/introducing-ci-cd-steps-a-programming-language-for-devsecops-automation":3,"navigation-en-us":43,"banner-en-us":452,"footer-en-us":462,"blog-post-authors-en-us-Darren Eastman":702,"blog-related-posts-en-us-introducing-ci-cd-steps-a-programming-language-for-devsecops-automation":716,"blog-promotions-en-us":747,"next-steps-en-us":800},{"id":4,"title":5,"authorSlugs":6,"body":8,"categorySlug":9,"config":10,"content":14,"description":8,"extension":28,"isFeatured":12,"meta":29,"navigation":12,"path":30,"publishedDate":20,"seo":31,"stem":36,"tagSlugs":37,"__hash__":42},"blogPosts/en-us/blog/introducing-ci-cd-steps-a-programming-language-for-devsecops-automation.yml","Introducing Ci Cd Steps A Programming Language For Devsecops Automation",[7],"darren-eastman",null,"product",{"slug":11,"featured":12,"template":13},"introducing-ci-cd-steps-a-programming-language-for-devsecops-automation",true,"BlogPost",{"title":15,"description":16,"authors":17,"heroImage":19,"date":20,"body":21,"category":9,"tags":22},"Introducing CI/CD Steps, a programming language for DevSecOps automation","Inside GitLab’s vision for CI/CD programmability and a look at how we simplified workflow automation.",[18],"Darren Eastman","https://res.cloudinary.com/about-gitlab-com/image/upload/v1749665151/Blog/Hero%20Images/blog-image-template-1800x945__27_.png","2024-08-06","For years, the DevOps industry has tried to simplify how developers create automation scripts or workflows to automatically test a code change and to perform a task with the resulting artifact or binary. Today, we are introducing [CI/CD Steps](https://docs.gitlab.com/ee/ci/steps/), a programming language for DevSecOps automation in experiment phase, as a solution to this challenge. With CI/CD Steps, software development teams can easily create complex automation workflows within GitLab.\n\n## The path to CI/CD Steps\n\nEarly in the company's history, GitLab founders and engineers decided that there must be a tight integration between source code management, the place you store your code, and continuous integration, the automation workflows that test your code changes. And we've continued to evolve that integration, focusing on workflow automation tasks and differentiating from the approaches of CI engines across the industry, including Jenkins CI's domain-specific language, GitHub Actions, and many more. \n\nAnd, yes, I did mean to use the term workflow automation tasks rather than [CI and continuous deployment (CD)](https://about.gitlab.com/topics/ci-cd/). This is simply a result of the code that I have seen our customers develop. In a lot of cases, the platform engineering teams that support development teams using GitLab are writing complex automation scripts (workflows). So we need to embrace a more expansive construct beyond simply CI and CD. In fact, I have seen some developers rave about the flexibility of new CI/CD solutions that allow for modularity and conditionals in writing automation workflows.\n\nAt GitLab, our initial approach for CI authoring was based on YAML. We can endlessly debate the pros and cons of such a choice, but for me, as a [DevOps](https://about.gitlab.com/topics/devops/) practitioner coming from a large Fortune 50 company with a moshpit of Jenkins Groovy code and hundreds of permutations of scripts basically performing the same job, the GitLab CI authoring and execution approach was a breath of fresh air. \n\nThe first time I read a GitLab CI file – this was back in mid-2019 – my first thought was, \"No, it could not be that simple.\" A non-developer can easily grasp the intent of a basic GitLab CI pipeline without prior knowledge of all of the intricacies of the syntax of the execution model. In fact, I had just spent a year working on a team that spent several hours each day helping other development teams debug Jenkins pipelines written in Groovy and trying to figure out how to test, and in some cases build, large Java monoliths; in other cases, tons of microservices.\n\nWhile there are benefits to a GitLab CI YAML-based authoring and a bash script execution type approach, there are also limitations. Limitations that developers or platform engineers bump into as they integrate more complex workflows into their CI pipelines. These issues seem to be amplified at enterprise scale as platform teams are trying to simplify or standardize workflows across multiple development teams. In fact, one of the quotes from a recent customer survey states: “GitLab needs to embrace a post-YAML world for CI.”\n\nSo, over the past two years, our pipeline authoring team, led by Product Manager [Dov Hershkovitch](https://gitlab.com/dhershkovitch), has been working extensively on improving the pipeline authoring experience. They've also been improving the management experience of the building blocks for workflow automation – especially at scale. In fact, a part of this work, the [GitLab CI/CD Catalog](https://about.gitlab.com/blog/ci-cd-catalog-goes-ga-no-more-building-pipelines-from-scratch/), recently became generally available.\n\nThe logical next step was to build a new language for workflow automation.\n\n## Understanding CI/CD Steps\n\nGitLab CI/CD Steps is a concept incubated by our top-notch engineers. In [our documentation](https://docs.gitlab.com/ee/ci/steps/), we describe CI/CD Steps as reusable and composable pieces of a CI job that can be referenced in a GitLab CI pipeline configuration. But what does that really mean and what is the long-term value proposition?\n\nAs I was giving this some thought, a comment from one of our customers (paraphrased here) came to mind:\n\n“CI/CD Steps enables you to compose inputs and outputs for a CI/CD job. With CI/CD Steps, developers can define inputs and outputs and, therefore, use CI/CD Steps as a function as we do in any modern programming language. A key differentiator to a normal CI/CD component is that CI/CD Steps allows the use of the outputs of other steps without GitLab having to know certain values before running the pipeline. With CI/CD Steps, you could more easily auto-cancel redundant jobs when all jobs are running as part of the parent pipeline versus having to use child pipelines.”\n\nHaving CI/CD Steps alongside the current GitLab CI/CD execution mechanism and the [CI/CD component catalog](https://docs.gitlab.com/ee/ci/components/index.html) unlocks so many possibilities for creating and maintaining the most complex CI/CD workflows. \n\nA key feature is reusability. Now, I am not suggesting that once we release CI/CD Steps as generally available, you would immediately start refactoring your currently working CI/CD jobs to CI/CD Steps. Instead, you likely will find opportunities to introduce CI/CD Steps to optimize complex pipeline workflows, and, in doing so, you will begin to reuse a CI/CD Step that you author in multiple pipelines.\n\nCI/CD Steps is a marathon, not a sprint. When we release this in beta (currently targeted for late 2024) and start getting feedback from you, we will learn new information that will guide the evolution of this new CI programming language as well as the new Step Runner, which is designed specifically to run CI/CD Steps alongside the current CI/CD jobs.\n\nI'm sure there will be questions about our strategy: Why did we make certain syntax choices? Why didn't we use Starlark as the basis for this new approach? Why did we create something new that we all have to learn? My boilerplate response is: At GitLab we develop our software in the open. More importantly, as a customer, user, and community member, if you have an idea of how to make it better, we invite you to create a merge request so we can improve this feature together.\n\nWe are the only enterprise software platform where, as users and customers, **you** have a direct say in how the platform evolves and **you** can see the changes happening transparently and in real time. That’s the power of GitLab – we iterate and we collaborate. You have invested in a platform and community that is able to evolve with the ever-changing software industry.\n\n## Create your own CI/CD step\n\nTo get a deeper understanding of CI Steps and our direction, take a look at the detailed refactoring proof-of-concept writeup in [this issue](https://gitlab.com/gitlab-org/step-runner/-/issues/85). [Principal engineer Joe Burnett](https://gitlab.com/josephburnett) walks through in great detail the thought process for refactoring a CI/CD job used as part of our GitLab Runner automated test framework. There are also recommendations noted at the end that will inform the evolution of the CI Steps syntax.\n\nThen check out the [CI/CD Steps tutorial](https://docs.gitlab.com/ee/tutorials/setup_steps/) and try creating your own CI/CD step. We recently released the `run` keyword, so testing out a CI/CD step will be simpler than previous examples that required using environment variables. This feature set is experimental so please share your experiences on the [feedback issue](https://gitlab.com/gitlab-org/gitlab/-/issues/460057). There also is a separate feedback issue if you are testing the [Run GitHub Actions with CI/CD Steps experimental feature](https://docs.gitlab.com/ee/ci/steps/#actions).\n\nWe look forward to working with you on this journey to continuously improve the GitLab CI/CD authoring experience.\n\n## Read more\n- [CI/CD Catalog goes GA](https://about.gitlab.com/blog/ci-cd-catalog-goes-ga-no-more-building-pipelines-from-scratch/)\n- [FAQ: GitLab CI/CD Catalog](https://about.gitlab.com/blog/faq-gitlab-ci-cd-catalog/)\n- [What is CI/CD?](https://about.gitlab.com/topics/ci-cd/)\n- [The basics of CI](https://about.gitlab.com/blog/basics-of-gitlab-ci-updated/)\n",[23,24,25,26,27],"DevSecOps 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18.11: Budget guardrails for GitLab Credits","Learn how new spending caps and per-user credit limits give organizations the budget guardrails to scale GitLab Duo Agent Platform.",[722],"Bryan Rothwell","https://res.cloudinary.com/about-gitlab-com/image/upload/v1776259080/cakqnwo5ecp255lo8lzo.png","2026-04-16","Teams using GitLab Duo Agent Platform with on-demand GitLab Credits are shipping faster, catching bugs earlier, and automating tasks that used to take entire sprints. But as adoption grows, so does oversight from finance, procurement, and platform teams to prove that AI spending is bounded, predictable, and controllable.\n\nOne of the greatest barriers to broader AI adoption isn't skepticism about the technology. It's uncertainty about managing spend. Without budget caps, a busy month could produce unexpected expenses. Without per-user limits, a handful of power users could burn through the team's credits before the month is over. And without either, engineering leaders who want to expand their use of agentic AI for software development have to jump through more hoops for budget approval.\n\nSince its [general availability](https://about.gitlab.com/blog/gitlab-duo-agent-platform-is-generally-available/), GitLab Duo Agent Platform has provided usage governance and visibility. With GitLab 18.11, we're introducing usage controls for [GitLab Credits](https://about.gitlab.com/blog/introducing-gitlab-credits/): spending caps and budget guardrails that give your organization even more control and transparency over how credits are consumed.\n\n## Managing GitLab Credits\n\nGitLab 18.11 adds three layers of control over GitLab Credits consumption: a subscription-level spending cap, per-user credit limits, and visibility into cap status and enforcement.\n\n### Subscription-level spending cap\n\nBilling account managers can now set a hard monthly ceiling for on-demand GitLab Credits consumption for their entire subscription.\n\nHere's how it works:\n\n* **Set a cap** in the `Customers Portal` under your subscription's GitLab Credits settings.  \n* **Enforce spend limits automatically.**  When on-demand usage reaches the cap, DAP access is paused for all users on that subscription until the next monthly period begins.  \n* **Make adjustments as you go.** Raise or disable the cap mid-month to restore access.\n\nThe cap resets each monthly period and your configured limit carries forward unless you change it. Because usage data is synchronized periodically rather than in real time, a small amount of additional usage may occur after the cap is reached before enforcement takes effect. See the [GitLab Credits documentation](https://docs.gitlab.com/subscriptions/gitlab_credits/) for details.\n\n### User-level spending caps\n\nNot every user consumes credits at the same rate, and that's expected. But when one or two power users account for a disproportionate share of the pool, the rest of the team can lose access before the month is over.\n\nPer-user credit caps prevent any single user from consuming more than their fair share:\n\n* **Flat per-user cap.** Set a uniform credit limit that applies equally to every user on the subscription through the GitLab GraphQL API. Unlike the subscription-level cap, the per-user cap applies to a user's total consumption across all credit sources.  \n* **Custom per-user overrides.** For organizations that need differentiated limits, you can set individual credit caps for specific users through the GraphQL API. For example, you could give your staff engineers a higher allocation while applying a standard limit to the broader team.  \n* **Individual enforcement.** When a user reaches their cap, they retain full access to GitLab. Only their Duo Agent Platform credit usage is paused until the next billing cycle. Everyone else keeps working uninterrupted until they hit their own limit or the subscription-level cap is reached, whichever comes first.\n\n### Visibility and notifications\n\nWhen a subscription-level cap is reached, GitLab sends an email notification to billing account managers so they can take action: raise the cap, wait for the next period, or redistribute credits.\n\nWithin GitLab, group owners (GitLab.com) and instance administrators (Self-Managed) can view which users have been blocked due to reaching their per-user cap and restore access by adjusting the cap through the GraphQL API. \n\n## How budget guardrails help organizations scale AI usage\n\nGuardrails are essential as organizations ramp up their AI adoption. Here's why:\n\n### Predictable AI budgets\n\nUsage controls for GitLab Duo Agent Platform turn AI into a bounded, predictable budget item using on-demand GitLab Credits. That makes it easier to deploy agents across the software development lifecycle and get sign-off from finance, justify renewals, and plan quarterly spend.\n\n### Governance and chargeback\n\nLarge organizations often need to align AI consumption with internal budgets, cost centers, or departmental policies. Per-user caps give platform teams a straightforward mechanism to allocate credits fairly and track consumption at the individual level. The API import options make it practical to manage caps at enterprise scale. Combined with per-user usage data from the GitLab Credits dashboard, organizations can track consumption patterns to inform their own internal chargeback or budget allocation processes.\n\n### Confidence to scale\n\nMany customers start GitLab Duo Agent Platform with a small pilot group. Usage controls remove risks associated with expanding that pilot across the organization. You can roll out Duo Agent Platform to hundreds or thousands of developers knowing there's a hard ceiling protecting your budget. If usage grows faster than expected, you'll hit the cap, not an unexpected invoice.\n\n## Addressing the seat-based and visibility conundrum\n\nMany AI coding tools take a seat-based approach to cost management. You buy a fixed number of seats at a flat per-user price, and that's your budget. It's simple, but rigid. You pay the same whether a developer uses the tool ten times a day or never touches it. And as vendors introduce premium models and usage-based overages on top of seat pricing, the cost predictability that seat-based licensing promised starts to erode.\n\n\nGitLab takes a different approach. Usage-based pricing with hard caps and a single governance dashboard. You get the flexibility of paying for what your teams actually use, with the budget predictability of enforced spending limits.\n\n## Real-world usage controls\n\n**One example is a mid-size SaaS customer that wants to protect their monthly budget.** A 200-person engineering organization sets a subscription-level cap equal to their expected on-demand usage. Their VP of Engineering can confidently tell finance that GitLab Duo Agent Platform spend will never exceed the approved amount, even as they onboard new teams. If they approach the cap mid-month, the billing account manager gets a notification and can decide whether to raise the limit or wait for the next period.\n\n**At GitLab, we also work with large enterprises that want to keep usage fair across teams.** A global financial services company with 2,000 developers uses per-user caps to ensure equitable access. Staff engineers working on complex refactoring projects get a higher individual allocation via API, while most developers receive a standard flat cap. No single user can exhaust the pool, and the platform team uses the per-user usage data in the GitLab Credits dashboard to track consumption patterns and inform quarterly budget planning.\n\n## Getting started\n\nUsage controls are available for both GitLab.com and Self-Managed customers running GitLab 18.11. Different controls are configured in different places depending on the scope and your role.\n\n**Subscription-level cap**\n\nBilling account managers set the subscription-level on-demand cap in the Customers Portal:\n\n1. Sign in to the `Customers Portal`.  \n2. On your subscription card, navigate to **GitLab Credits** settings.  \n3. Enable the monthly on-demand credits cap and enter your desired limit.\n\n**Flat per-user cap**\n\nThe flat per-user cap can be set through the GitLab GraphQL API by namespace owners (GitLab.com) or instance administrators (Self-Managed). Check the [GitLab Credits documentation](https://docs.gitlab.com/subscriptions/gitlab_credits/) for the latest on available configuration surfaces.\n\n**Custom per-user overrides**\n\nFor differentiated limits, namespace owners (GitLab.com) and instance administrators (Self-Managed) can set individual caps programmatically. This is useful for automation and infrastructure-as-code workflows.\n\n**Monitor usage and cap status**\n\n* **Customers Portal:** View detailed usage and cap status.  \n* **GitLab.com:** Group owners can view blocked users under **Settings > GitLab Credits**.  \n* **Self-Managed:** Instance administrators can view cap status and blocked users under **Admin > GitLab Credits**.\n\n## GitLab Duo Agent Platform is ready to scale\n\nUsage controls are available now in GitLab 18.11. If you've been waiting for the right guardrails before expanding GitLab Duo Agent Platform across your organization, this is your moment. Set your caps, roll out Duo Agent Platform to more teams, and start shipping faster!\n\n> [Learn more about GitLab Credits and usage controls](https://docs.gitlab.com/subscriptions/gitlab_credits/).",[9,727,728],"AI/ML","news",{"featured":32,"template":13,"slug":730},"gitlab-18-11-budget-guardrails-for-gitlab-credits",{"content":732,"config":735},{"title":733,"heroImage":723,"description":734,"date":724,"category":9},"GitLab 18.11 release","This release includes Agentic SAST Vulnerability Resolution, Data Analyst Foundational Agent, CI Expert Agent, and more.",{"featured":32,"template":13,"externalUrl":736},"https://docs.gitlab.com/releases/18/gitlab-18-11-released/",{"content":738,"config":745},{"title":739,"description":740,"authors":741,"heroImage":723,"date":724,"body":743,"category":9,"tags":744},"GitLab 18.11: CI Expert and Data Analyst AI agents target development gaps","Set up CI and query your software development lifecycle data with two new GitLab Duo Agent Platform foundational agents available in GitLab 18.11.",[742],"Corinne Dent","AI-generated code moves faster than the systems around it can keep up with. More code means more merge requests queued, more pipelines to configure, more questions about delivery that nobody has time to answer — and most of the tooling teams rely on wasn't built for this pace.\n\nIn GitLab 18.11, two new foundational agents for Duo Agent Platform address specific gaps in the development lifecycle that AI has largely left untouched:\n* CI Expert Agent (now in beta) focuses on the gap between writing code and getting it into a running pipeline\n* Data Analyst Agent (now generally available) focuses on the gap between shipping code and being able to answer basic questions about how that delivery is actually going.\n\n\nThese are problem areas that couldn't be solved by a general-purpose assistant. A tool running outside GitLab can generate a YAML file or answer a question, but it has no awareness of how your pipelines have historically performed, where failures cluster, or what your actual MR cycle times look like. That context lives in GitLab. These agents do too.\n## Fast CI setup with CI Expert Agent\n\nAI has made it easier than ever to write code. Getting that code into a running pipeline is still something most teams do days, or weeks, later — if at all. The blank-page problem isn't in the editor anymore. The blank page is now in `.gitlab-ci.yml`.\n\nDevelopers who have never configured CI don't know what language detection looks like in YAML, what their test commands should be, or how to validate the result before pushing. Teams either copy a config from a previous project that may not fit, stitch together examples from documentation, or wait for the one person who's done it before. If that person isn't available, CI becomes the thing you'll \"get to later.\" Later becomes never.\n\nWhen CI never happens, the impact shows up everywhere else. Changes ship without a reliable safety net, regressions surface in production instead of in pipelines, and work piles up in bigger, riskier batches because no one wants to be the person who “breaks the build.” Over time, teams normalize working in the dark, often relying on undocumented institutional knowledge and ad-hoc testing, instead of having a fast, predictable feedback loop baked into every change.\n\nCI Expert Agent, now available in beta, removes that friction. It inspects your repository, identifies your language and framework, and proposes a working build and test pipeline tailored to what's actually there — then explains every decision in plain language. The target: a running pipeline in minutes, with no YAML written by hand.\n\nWhat CI Expert Agent does:\n\n* Repo-aware pipeline generation detects language, framework, and test setup \n* Generates valid, runnable build and test configurations   \n* Guided first-pipeline flow with plain-language explanation of each step in Agentic Chat  \n* Native GitLab CI semantics with no config translation required\n\nBecause it runs inside GitLab and sees real pipeline behavior over time, each improvement can build on how teams actually work, not just on static examples.\n\u003Ciframe src=\"https://player.vimeo.com/video/1183458036?badge=0&amp;autopause=0&amp;player_id=0&amp;app_id=58479\" frameborder=\"0\" allow=\"autoplay; fullscreen; picture-in-picture; clipboard-write; encrypted-media; web-share\" referrerpolicy=\"strict-origin-when-cross-origin\" style=\"position:absolute;top:0;left:0;width:100%;height:100%;\" title=\"CI/CD Expert Agent\">\u003C/iframe>\u003Cscript src=\"https://player.vimeo.com/api/player.js\">\u003C/script>\n\u003Cbr>\u003C/br>\n\nCI Expert Agent is available on GitLab.com, Self-Managed, Dedicated; Free, Premium, Ultimate Editions with Duo Agent Platform enabled.\n\n## Query GitLab data in plain language with Data Analyst Agent\n\nAI has sped up how teams ship. Answering basic questions about how that work is going has gotten harder, not easier.\n\nHow long are MRs sitting in review? Which pipelines are slowing teams down? Are deployment targets actually being hit? These questions used to be answerable by glancing at a dashboard. Now, with more code, more teams, and more complexity, the data exists — it's in GitLab — but accessing it still means waiting on an analytics team, filing a dashboard request, or learning GLQL.\n\nData Analyst Agent targets that gap. Ask a natural-language question and get an instant visualization in Agentic Chat. No query language, no dashboard request, no waiting for the answers to be assembled by someone else.\n\nFor example, the agent can answer questions about the following topics for these roles:\n\n* Engineering managers: MR cycle time, throughput by project, where reviews get stuck  \n* Developers: Contribution patterns, flaky tests blocking their MRs, pipeline speed trends  \n* DevOps and platform engineers: Pipeline success/failure rates, runner utilization, deployment frequency  \n* Engineering leadership: Cross-portfolio deployment frequency, project health metrics, lead time comparisons\n\nNow generally available in 18.11, the agent covers MRs, issues, projects, pipelines, and jobs — full software development lifecycle coverage, expanded from the beta scope. Because Data Analyst Agent queries what's already in GitLab, the context is always current, and there's no pipeline to maintain or third-party tool to keep synchronized. Generated GitLab Query Language queries can be copied and used anywhere GitLab Flavored Markdown is supported, with direct export to work items and dashboards on the roadmap.\n\n\u003Ciframe src=\"https://player.vimeo.com/video/1183094817?badge=0&amp;autopause=0&amp;player_id=0&amp;app_id=58479\" frameborder=\"0\" allow=\"autoplay; fullscreen; picture-in-picture; clipboard-write; encrypted-media; web-share\" referrerpolicy=\"strict-origin-when-cross-origin\" style=\"position:absolute;top:0;left:0;width:100%;height:100%;\" title=\"Data Analyst agent demo\">\u003C/iframe>\u003Cscript src=\"https://player.vimeo.com/api/player.js\">\u003C/script>\n\u003Cbr>\u003C/br>\n\nData Analyst Agent is available on GitLab.com, Self-Managed, Dedicated; Free, Premium and Ultimate Edition with Duo Agent Platform enabled.\n\n## One platform, connected context\n\nBoth agents run inside GitLab, with access to the code, pipelines, issues, and merge requests already there. That's what separates platform-native AI from a disconnected assistant: the context is always current, and it only gets more useful over time. CI Expert Agent and Data Analyst Agent represent two concrete steps toward a platform where AI doesn't just help you write code faster; it helps you understand, ship, and maintain what gets built.\n\n> [Start a free trial of GitLab Duo Agent Platform](https://about.gitlab.com/gitlab-duo/) to experience these foundational AI agents.",[727,27,9],{"featured":12,"template":13,"slug":746},"ci-expert-and-data-analyst-ai-agents-target-development-gaps",{"promotions":748},[749,763,774,786],{"id":750,"categories":751,"header":753,"text":754,"button":755,"image":760},"ai-modernization",[752],"ai-ml","Is AI achieving its promise at scale?","Quiz will take 5 minutes or less",{"text":756,"config":757},"Get your AI maturity score",{"href":758,"dataGaName":759,"dataGaLocation":246},"/assessments/ai-modernization-assessment/","modernization assessment",{"config":761},{"src":762},"https://res.cloudinary.com/about-gitlab-com/image/upload/v1772138786/qix0m7kwnd8x2fh1zq49.png",{"id":764,"categories":765,"header":766,"text":754,"button":767,"image":771},"devops-modernization",[9,570],"Are you just managing tools or shipping innovation?",{"text":768,"config":769},"Get your DevOps maturity score",{"href":770,"dataGaName":759,"dataGaLocation":246},"/assessments/devops-modernization-assessment/",{"config":772},{"src":773},"https://res.cloudinary.com/about-gitlab-com/image/upload/v1772138785/eg818fmakweyuznttgid.png",{"id":775,"categories":776,"header":778,"text":754,"button":779,"image":783},"security-modernization",[777],"security","Are you trading speed for security?",{"text":780,"config":781},"Get your security maturity score",{"href":782,"dataGaName":759,"dataGaLocation":246},"/assessments/security-modernization-assessment/",{"config":784},{"src":785},"https://res.cloudinary.com/about-gitlab-com/image/upload/v1772138786/p4pbqd9nnjejg5ds6mdk.png",{"id":787,"paths":788,"header":791,"text":792,"button":793,"image":798},"github-azure-migration",[789,790],"migration-from-azure-devops-to-gitlab","integrating-azure-devops-scm-and-gitlab","Is your team ready for GitHub's Azure move?","GitHub is already rebuilding around Azure. Find out what it means for you.",{"text":794,"config":795},"See how GitLab compares to GitHub",{"href":796,"dataGaName":797,"dataGaLocation":246},"/compare/gitlab-vs-github/github-azure-migration/","github azure migration",{"config":799},{"src":773},{"header":801,"blurb":802,"button":803,"secondaryButton":808},"Start building faster today","See what your team can do with the intelligent orchestration platform for DevSecOps.\n",{"text":804,"config":805},"Get your free trial",{"href":806,"dataGaName":54,"dataGaLocation":807},"https://gitlab.com/-/trial_registrations/new?glm_content=default-saas-trial&glm_source=about.gitlab.com/","feature",{"text":508,"config":809},{"href":58,"dataGaName":59,"dataGaLocation":807},1776442974886]