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GitHub Actions Experts in Berlin

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Hire experts who automate CI/CD, build dependable workflows, and connect GitHub Actions with testing, releases, and cloud deployment. Get fast, precise matching with vetted, available freelancers.

Meet FRATCH Experts in Berlin, who have recently used GitHub Actions

Verified expert

Rüdiger Schulz

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Full-Stack Software Engineer / Consultant for Digitalization

Berlin
Rüdiger Schulz

Last position:

Full-Stack Software Engineer / Consultant for Digitalization at ARTEVENT

  • Designed, built, and launched an internal event planning web application used by over 100 department leads for a large event, despite having no dedicated testing phase.

  • Ensured smooth, failure-free operation during first production use, leading to the tool being adopted for future events.

  • Automated catering calculations and related workflows, significantly reducing email communication and manual computation effort for meal planning.

  • Managed deployment and hosting on a Linux server using Coolify, including application setup and runtime operations.

  • Hired and guided a communication designer on UX while independently owning all technical decisions and implementation.

Verified expert

Aruldass Arulanandu

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Full-stack AI Engineer

Berlin
Aruldass Arulanandu

Last position:

Web Module Lead at Mphasis Limited

  • Led the end-to-end delivery of enterprise full-stack web applications by driving requirement analysis, solution design, frontend and backend development, database design, API integration, code reviews, team coordination, Agile execution, CI/CD deployments, production support, performance optimization, security implementation, and stakeholder collaboration to deliver scalable, high-quality software solutions.
Verified expert

Deepak Mishra

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Lead ML Platform Engineer

Berlin
Deepak Mishra

Last position:

Lead ML Platform Engineer at Billie GmbH

  • Mentor team of 6 ML platform engineers through weekly 1:1s, technical design reviews, and best practices, improving team velocity by 35% through structured sprint planning and skill development programs
  • Define 2025–2026 ML platform roadmap in collaboration with Data Science, Cloud Engineering, and Product teams, prioritizing automated model governance, cost attribution systems, and multi-environment deployment strategies
  • Partner with Data Science, SRE, and Product stakeholders to align ML platform capabilities with business objectives, reducing data scientist deployment friction by 60% through self-service platforms
  • Architect and deliver production-grade MLOps platform supporting 50+ models in production with automated promotion pipelines, versioning, and rollback capabilities, achieving 99.5% platform uptime SLA
  • Design distributed ML pipeline architecture using Metaflow and Argo Workflows (Vertex Pipelines-compatible), reducing model training time by 30% and deployment cycles from 2 weeks to 3 days through full CI/CD automation
  • Build containerized ML services on Kubernetes with auto-scaling policies, resource quotas, and multi-tenancy isolation, optimizing infrastructure costs by $180K annually (25% reduction)
  • Implement monitoring, alerting, and performance tracking using Prometheus, Grafana, and custom instrumentation, reducing model debugging time by 50% and establishing model performance SLOs
  • Lead development of RAG-based document intelligence platform using LangChain, LangGraph, and vector databases, implementing agentic AI workflows for automated financial document processing
  • Implement Infrastructure-as-Code using Terraform for reproducible environment provisioning and GitOps workflows, reducing infrastructure drift incidents by 80%
  • Design role-based access control for ML platform, implement model lineage tracking, and establish audit trails for regulatory compliance aligned with enterprise IAM best practices
Verified expert

Haseeb Zahid

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Senior AI Engineer | LLM Engineer | ML Engineer

Berlin
Haseeb Zahid

Last position:

Senior Data Scientist at WPP MEDIA

  • Designed and deployed enterprise Retrieval-Augmented Generation (RAG) applications using LangChain, LangGraph, vector databases, embeddings, and open-source LLMs served through vLLM on GCP GPU infrastructure.
  • Built agentic AI workflows using LangGraph with planning, reasoning, tool execution, persistent memory, session management, and Human-in-the-Loop approval mechanisms.
  • Developed LLM-powered automation systems integrating BigQuery, SQL pipelines, and external advertising APIs including Meta, TikTok, Amazon, Snapchat, Google, and Pinterest, reducing manual operational workflows.
  • Architected multi-agent AI systems for enterprise analytics and decision-support workflows, enabling autonomous task execution and intelligent data interactions.
  • Implemented retrieval optimization strategies including multi-retriever architectures, semantic search, context optimization, and query improvement techniques, improving response relevance by approximately 40%.
  • Engineered structured prompting strategies, function-calling schemas, and validation workflows to improve reliability of multi-step LLM applications.
  • Designed scalable AI services using Python, FastAPI, Cloud Run, Pub/Sub, BigQuery, Docker, and cloud-native deployment architectures.
Verified expert

Jorge Nuricumbo

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Senior AI Engineer | Backend Developer C#/.NET | RAG, LLM Integration, Semantic Kernel | Azure, GCP, AWS

Berlin
Jorge Nuricumbo

Last position:

Senior Developer at SafeXSmart KI Solutions UG

AI Platform Backend – Senior Developer

Brought in to design and build a backend for an AI platform from scratch, including multi-provider LLM orchestration and real-time infrastructure for AI influencer personas at scale.

Tasks and responsibilities

  • Architected and implemented a multi-LLM orchestration layer with Semantic Kernel to integrate GPT-4 and other providers for core platform logic and AI influencer personas, reducing model-switching overhead by abstracting provider APIs behind a single interface.
  • Designed and developed a backend from scratch in C# / .NET 10, including domain modeling with DDD, a versioned RESTful API layer, and cloud infrastructure setup on Azure.
  • Built a real-time chat infrastructure with Server-Sent Events (SSE), message persistence, and delivery guarantees for live operation of AI influencer personas at scale.
  • Developed a media management service with integration of cloud object storage for upload and retrieval of influencer-generated content.
  • Created an integration and unit test suite with data seeding for reliable regression testing across all core platform flows, significantly reducing the production error rate.

Tools and technologies: C#, .NET, ASP.NET Core, Python, TypeScript, MySQL, Semantic Kernel, EF Core, Minimal APIs, LLM Orchestration, Prompt Engineering, Agentic AI, Generative AI, AI-Assisted Engineering, Claude Code, GitHub Copilot, Google Gemini, OpenAI API, Ollama, Redis, Azure, Azure Container Apps, Azure Database for MySQL, Docker, GitHub Actions, Clean Architecture, Vertical Slice Architecture, CQRS, Domain-Driven Design, REST API, xUnit, Integration Testing, Unit Testing, Jira, Confluence, Scrum

Verified expert

Julius Herrera Glomm

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Freelancer

Berlin
Julius Herrera Glomm

Last position:

Freelancer at Freelancer — Pharma Industry

  • Led migration to GCP using Terraform, GKE, and GitOps, improving deployment consistency and scalability
  • Implemented Datadog observability stack via Terraform and datadog-operator
  • Established automated end-to-end tests and on-call processes, improving incident response and service reliability
  • Migrated from NGINX Ingress Controller to Kubernetes Gateway API (NGINX Gateway Fabric)
  • Migrated stateful services (PostgreSQL and Redis) to GCP, improving scalability and operational reliability
Verified expert

Santhosh Kannan

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Freelance Software Engineer

Berlin
Santhosh Kannan

Last position:

Freelance Software Engineer at Zalando SE

  • Support Authorization as a Service initiative for enterprise-scale authorization platform
  • Incorporate comprehensive observability solutions into authorization infrastructure
  • Provision and manage AWS infrastructure for authorization services
  • Mentor development team on AWS and Kubernetes best practices
  • Tech Stack: Java/Kotlin, Golang, Python, OPA, Spring Boot, AWS, Kubernetes, Terraform, ELK Stack, Prometheus, Grafana
Verified expert

Oleg Abrazhaev

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Staff Software Engineer

Berlin
Oleg Abrazhaev

Last position:

Staff Software Engineer at Kpler Germany GmbH

  • Delivered a new notifications platform implementation built from scratch to replace existing and upcoming services
  • Collaborating with other teams to integrate more domains

Tech stack:

  • Data: Scala 3, Apache Kafka, Python, Airflow, Astronomer
  • BE-FE: TypeScript, NestJS, Java, Spring Boot, Vue
  • Dev-ops: AWS, PostgreSQL, Docker, GitHub Actions, Kubernetes, Helm, ArgoCD
Verified expert

Nada Sadek

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Senior Frontend Engineer (React & TypeScript)

Berlin
Nada Sadek

Last position:

Freelance Senior Frontend Engineer at Self-Employed

  • Senior software engineer focused on React, TypeScript and AI-assisted product workflows
  • Build frontend systems for complex SaaS products, internal tools and operational workflows
  • Recent work includes AI evaluation tooling, support reliability analysis and developer-focused QA systems
  • Available for freelance and contract engagements, especially remote-first projects
Verified expert

Wolfram Knan

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Certified AI & Machine Learning Engineer · Senior Consultant

Berlin
Wolfram Knan

Last position:

AI / Machine Learning Engineer (Projects & Applied AI) at UNIVERSITÉ PARIS 1 PANTHEON-SORBONNE & LIORA

  • Designed and implemented a hybrid recommendation system (content-based + collaborative filtering)
  • Built end-to-end ML pipelines including data processing, feature engineering, model training, and evaluation
  • Developed RAG-based LLM systems using LangChain and vector databases for semantic search and knowledge retrieval
  • Established MLOps workflows with MLflow for experiment tracking, versioning, and deployment readiness
  • Implemented deep learning models (computer vision & classification) using PyTorch and TensorFlow
Verified expert

Marina Kornilova

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Software Developer | C# | AWS Cloud

Berlin
Marina Kornilova

Last position:

Independent Software Developer at LILARAUM

  • Independently designed, developed, published, and maintained mobile games for iOS and Android.
  • Implemented application architecture, gameplay systems, UI, monetization, analytics, and platform integrations.
  • Managed the complete release lifecycle, including testing, store publication, production monitoring, and iterative improvements based on analytics.
Verified expert

Muzamal Ali

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Data Scientist | AI Engineer

Berlin
Muzamal Ali

Last position:

Data Scientist / AI Consultant at HelmX

  • Delivered AI and data science solutions, including LLM-based chatbots and data pipelines, improving operational efficiency.
  • Collaborated on product features, achieving measurable impact and maintaining strong client relationships.
Verified expert

Hamza Khan

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Academic Research Contributor in Health Sector (Volunteer)

Berlin
Hamza Khan

Last position:

Academic Research Contributor in Health Sector (Volunteer)

  • Acted as technical consultant to optimize multi-layer ensemble models combining ResNet, CNN-BiGRU-Attention, and XGBoost.
  • Guided implementation of a Logistic Regression meta-learner to solve class imbalance problems, achieving 92.86% accuracy and 0.9644 AUC on PTB-XL and Chapman-Shaoxing datasets.
Verified expert

Jan Krol

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Data Expert

Berlin
Jan Krol

Last position:

Data Expert at Manufacturing

Discover over 15,000 top freelancers

Statistics of experts using GitHub Actions

Aggregated from the professional profiles of matched freelancers.

Experience

15 years

Position duration

2 years (Germany: 1.9 years)

Positions per freelancer

9 (Germany: 10)

Top business areas

Information Technology, Product Development, Quality Assurance

Top industries

Information Technology, Banking and Finance, Education

Certification focus areas

Information Technology, Business Intelligence, Product Development

Bachelor's degree or higher

98% (Germany: 92%)

Master's degree or higher

54% (Germany: 55%)

Doctorate

4% (Germany: 7%)

Certifications per freelancer

1 (Germany: 3)

Most common languages

English, German, Arabic

Speak two or more languages

93% (Germany: 97%)

Based on our profile pool as of 30 Aug 2026.

Daily rate distribution

0 10 20 30 40
<€400 €400-​800 €800-​1200 €1200+

The chart shows how the daily rates of freelancers in this technology in Berlin are distributed, based on recent contracts on our platform. Each bar covers a rate range — its height shows how many freelancers charge within that range.

Average rates of experts in Berlin using GitHub Actions

Rates are based on recent contracts and do not include FRATCH margin.

800
600
400
200
Rate comparison chart
Daily rate avg. 657 €
Germany avg. 753 €

The average daily rate is the mean of all daily rates from recent contracts of comparable freelancers on our platform.

800
600
400
200
Rate comparison chart
Median rate 680 €
Germany median 760 €

The median daily rate is the middle value of all daily rates — half of comparable freelancers charge less, half charge more. Unlike the average, it is barely affected by outliers.

Calculated based on our freelancers’ daily rates as of 30 Aug 2026. Actual rates may vary depending on seniority level, experience, skill specialization, project complexity, and engagement length.

About the technology

Workflow automation

GitHub Actions is GitHub’s built-in automation system for software delivery. Teams use it to run tests, build artifacts, publish packages, and deploy code when changes land in a repository. It fits projects that need repeatable steps tied closely to pull requests and branch activity.

Typical use cases

  • Continuous integration for app and library code
  • Release pipelines for packages, containers, and docs
  • Scheduled checks, maintenance tasks, and repo automation
  • Security scans and policy gates in the delivery flow

It works well when teams want automation close to the code instead of a separate CI server.

Ecosystem and tools

A strong specialist knows workflows, jobs, steps, runners, secrets, and reusable actions. They also understand the surrounding ecosystem: GitHub-hosted and self-hosted runners, marketplace actions, OIDC-based cloud access, matrix builds, and artifact handling. Good setup keeps pipelines clear, secure, and easy to maintain.

When companies bring in help

Companies often need freelance expertise when workflows become slow, brittle, or hard to review. That is common during migration from Jenkins, Azure DevOps, CircleCI, or other CI tools into GitHub Actions. Berlin teams also bring in specialists when local product groups work with distributed release cycles and need clean handover between on-site and remote staff.

What strong specialists deliver

  • Clean workflow design with shared, reusable logic
  • Reliable builds across branches, tags, and pull requests
  • Secure secret handling and least-privilege access
  • Faster troubleshooting for flaky jobs and runner issues
  • Clear documentation for future maintenance

The best professionals keep pipelines readable and predictable, not clever. They choose the right trigger, scope permissions carefully, and make failure messages useful.

Skills around the technology

GitHub Actions sits close to Git, YAML, shell scripting, and the tools used in delivery pipelines. Depending on the stack, specialists may also work with Docker, Node.js actions, Python scripts, cloud auth, and release tooling. In Berlin, good communication in English is often enough, but teams with mixed local and international staff value clear written notes and direct workflow handover.

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Frequently asked questions

Quick answers to the questions that come up most around GitHub Actions.

GitHub Actions is used to automate work inside a GitHub repository. Companies rely on it for testing, builds, package publishing, container delivery, and routine repository tasks. It is a good fit when the automation should follow the code and run on every pull request, push, or release.

GitHub Actions is built into GitHub, so it often feels simpler when the source code already lives there. Jenkins gives very broad control, while CircleCI and similar tools can be strong for dedicated delivery pipelines. The right choice depends on how much customization, hosting control, and GitHub integration the team needs.

A strong GitHub Actions specialist usually knows YAML, Git, shell scripting, and basic CI/CD design. Cloud access, Docker, package publishing, and secrets management are also common. For more advanced setups, reusable workflows and secure token handling matter a lot.

GitHub Actions expertise helps when workflows are already important to delivery and the team cannot afford trial and error. That is often the case when pipelines break, releases are manual, or many repositories need the same automation pattern. A freelancer is also useful during migration from another CI system.

Yes, GitHub Actions is well suited to distributed teams because the workflow definition lives in the repository. Berlin-based companies often combine local product or platform staff with remote specialists who can review workflows, fix runners, and document changes clearly. Written communication matters more than being on-site for most tasks.

Look for someone who keeps GitHub Actions workflows short, readable, and secure. Good specialists avoid duplicated steps, use reusable workflows where helpful, and know how to diagnose failing jobs without guesswork. Clear handover and documentation are also signs of quality.

GitHub Actions can do both CI and delivery tasks. Many teams use it to test code first, then build artifacts and deploy to cloud or container platforms after approval. A capable specialist should understand triggers, environments, permissions, and release gates.

A common mistake with GitHub Actions is letting workflows grow into hard-to-read copies of each other. Other problems include overly broad permissions, poor secret handling, and relying on unstable third-party actions without review. Strong experts simplify the flow and make failures easy to trace.

The average hourly rate of freelancers in Berlin, Germany who have used GitHub Actions in their recent projects is 82 €, which corresponds to a daily rate of about 657 € based on an 8-hour working day.

Of the freelancers in Berlin, Germany who have used GitHub Actions in their recent projects, 98% hold at least a Bachelor's degree, 54% hold at least a Master's degree, and 4% hold a doctorate.

On average, freelancers in Berlin, Germany who have used GitHub Actions in their recent projects have 15 years of professional experience, with a single engagement typically lasting around 2 years.

The most common languages among freelancers in Berlin, Germany who have used GitHub Actions in their recent projects are English (98%), German (91%), and Arabic (11%).

The most common industries among freelancers in Berlin, Germany who have used GitHub Actions in their recent projects are Information Technology (93%), Banking and Finance (43%), and Education (41%).

The most common business areas among freelancers in Berlin, Germany who have used GitHub Actions in their recent projects are Information Technology (98%), Product Development (93%), and Quality Assurance (54%).

Main locations of FRATCH Experts, who have recently used GitHub Actions

Our freelancers and interim experts are at home across the DACH region — available on-site in the major business hubs or fully remote. Choose a location to discover matched specialists, local market insights and up-to-date availability.

Berlin Hamburg Munich Cologne Frankfurt Stuttgart Dusseldorf Leipzig Dortmund Essen Bremen Dresden Hanover Nuremberg

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