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Part Time Google Cloud Consultant Jobs (NOW HIRING)

... work part-time with senior technical staff to research, design, develop, integrate, and test ... Cloud platforms (AWS, Azure, Google Cloud Platform) CNCF: K8, K3S, Rancher, Longhorn, Keycloak ...

THIS IS A PART-TIME (20 HOURS PER WEEK) W2 CONTRACT ROLE* FLUENCY IN MANDARIN IS PREFERRED ... Azure, Google Cloud). • Perform patch management, updates, and upgrades to systems and ...

Onsite · Job Type: Part-time (W2) or 1099 independent contractor · Benefits: Our client provides ... Google Cloud analytics (BigQuery, Dataform, Looker), alongside Delphi, ServiceNow, and PRISM.

Cloud Engineer

Arlington, VA · On-site

$99K - $225K/yr

Apply advanced consulting skills and extensive technical expertise, including full industry ... Full-time and part-time employees working at least 20 hours a week on a regular basis are eligible ...

Showing results 21-40

Part Time Google Cloud Consultant information

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$10

$64

$92

How much do part time google cloud consultant jobs pay per hour?

As of Aug 22, 2026, the average hourly pay for part time google cloud consultant in the United States is $64.53, according to ZipRecruiter salary data. Most workers in this role earn between $56.25 and $76.68 per hour, depending on experience, location, and employer.

What does a part time Google Cloud consultant do?

A Part Time Google Cloud Consultant helps organizations design, implement, and manage solutions using Google Cloud Platform (GCP), but works on a part-time basis. Their responsibilities often include assessing client needs, recommending cloud strategies, migrating data and applications, and optimizing existing cloud infrastructure. They may also provide training or troubleshooting support to help teams effectively use GCP services while balancing their hours to fit part-time schedules.

How does a part time Google Cloud consultant typically collaborate with full time teams and clients?

Part-time Google Cloud Consultants often work closely with both internal teams and external clients, usually through virtual meetings, collaborative project management tools, and scheduled check-ins. They are expected to maintain clear communication, provide timely updates, and integrate their expertise into ongoing projects, despite limited weekly hours. Balancing multiple clients or projects is common, and strong organizational skills are key to ensuring deliverables are met. Consultants often participate in key decision-making discussions and may provide training or documentation to empower full-time staff.

What are the key skills and qualifications needed to thrive as a part time Google Cloud consultant, and why are they important?

To thrive as a Part Time Google Cloud Consultant, you need expertise in cloud architecture, deployment, and troubleshooting, typically supported by a degree in computer science or related field and Google Cloud certifications. Familiarity with tools such as Google Cloud Console, Kubernetes, and Terraform, as well as experience integrating APIs and managing cloud security, is essential. Strong communication, client management, and problem-solving skills enable effective collaboration and tailored solutions. These skills ensure seamless cloud implementations and client satisfaction in a dynamic, project-based environment.

What is the difference between Part Time Google Cloud Consultant vs Part Time Cloud Solutions Architect?

AspectPart Time Google Cloud ConsultantPart Time Cloud Solutions Architect
CertificationsGoogle Cloud certifications (e.g., Associate Cloud Engineer, Professional Cloud Architect)Google Cloud certifications often preferred; broader cloud certifications (AWS, Azure) may also be relevant
Work EnvironmentConsulting firms, freelance projects, client sitesIn-house teams, consulting firms, client projects
ResponsibilitiesAdvising clients on Google Cloud solutions, implementation support, optimizationDesigning cloud architectures, overseeing deployment, ensuring scalability and security

The Part Time Google Cloud Consultant primarily focuses on advising and supporting clients with Google Cloud solutions, while the Part Time Cloud Solutions Architect is responsible for designing and overseeing cloud infrastructure. Both roles require similar certifications and often work in consulting or client environments, but their core duties differ in scope and focus.

What are the most commonly searched types of Google Cloud Consultant jobs?

The most popular types of Google Cloud Consultant jobs are:

Infographic showing various Part Time Google Cloud Consultant job openings in the United States as of August 2026, with employment types broken down into 89% Full Time, 2% Part Time, and 9% Contract. Highlights an 78% Physical, 7% Hybrid, and 15% Remote job distribution, with an average salary of $134,230 per year, or $64.5 per hour.

Remote | DevOps Engineer Up to $80/hour

24-MAG LLC

Manhattan, NY • On-site, Remote

$80/hr

Part-time

This job post has expired today. Applications are no longer accepted.


Job description

Specialised Part-Time Consulting OpportunityWe are sharing a specialised part-time consulting opportunity for experienced DevOps, Site Reliability, and Cloud Engineering professionals with hands-on expertise in production infrastructure, cloud platforms, Kubernetes, CI/CD, observability, and infrastructure automation.This sprint-based role supports an advanced AI research initiative focused on evaluating frontier coding models through realistic infrastructure engineering workflows. Selected professionals will use AI coding agents to complete technical tasks, review model-generated infrastructure implementations, identify reliability and engineering failures, and compare how different models perform across practical DevOps, SRE, and cloud scenarios.Key ResponsibilitiesInfrastructure Engineering EvaluationReview complex infrastructure engineering tasks completed with frontier AI coding agentsEvaluate implementations involving cloud platforms, Kubernetes, CI/CD systems, observability, and infrastructure automationAssess technical correctness, reliability, maintainability, and operational readinessApply professional engineering judgment to realistic production infrastructure scenariosAI Coding Agent TestingUse frontier AI coding agents within practical infrastructure engineering workflowsEvaluate how effectively coding models interpret requirements and implement solutionsIdentify bugs, edge cases, reliability issues, configuration errors, and failure modesAssess where models require correction, additional prompting, or manual engineering interventionCloud & Platform ReviewEvaluate solutions involving AWS, Azure, GCP, or comparable cloud environmentsReview Kubernetes configurations, deployment workflows, and infrastructure orchestrationAssess Terraform or similar infrastructure-as-code implementationsReview CI/CD pipelines, monitoring, logging, alerting, and observability approachesIdentify security, scalability, resilience, and operational concerns where relevantModel Comparison & Technical JudgmentCompare infrastructure solutions produced by multiple frontier coding modelsAssess differences in implementation strategy, technical reasoning, reliability, and code qualityDetermine which approaches best satisfy task requirementsDocument model strengths, weaknesses, and recurring engineering failure patternsProvide clear written assessments explaining relevant technical trade-offsIdeal ProfileStrong candidates may have:At least 2 years of professional DevOps, Site Reliability Engineering, or Cloud Engineering experienceHands-on experience supporting production-scale infrastructure or distributed systemsExperience with AWS, Azure, GCP, Kubernetes, Terraform, CI/CD pipelines, or observability toolingRegular use of AI coding agents within technical workflowsStrong ability to evaluate model-generated infrastructure and reliability engineering solutionsExperience diagnosing production issues, deployment failures, and infrastructure problemsStrong technical judgment, debugging skills, and written communicationAbility to work efficiently within short, intensive project sprintsEducational BackgroundA degree in computer science, software engineering, information technology, cloud computing, or a related technical discipline may be helpfulAdvanced technical training in cloud infrastructure, systems engineering, networking, or DevOps may strengthen an applicationRelevant cloud or infrastructure certifications may also be valuableEquivalent professional experience supporting production systems may be consideredNice to HaveExperience with AWS, Azure, or Google Cloud PlatformStrong Kubernetes and container orchestration experienceExpertise with Terraform or comparable infrastructure-as-code toolingBackground designing or maintaining CI/CD pipelinesFamiliarity with observability platforms, monitoring, logging, and incident responseExperience with Cursor, Claude Code, Codex, Windsurf, Gemini CLI, or comparable AI coding toolsKnowledge of production reliability, scalability, disaster recovery, and performance engineeringPrevious exposure to AI evaluation, benchmark development, or structured technical reviewWhy This OpportunityWork directly with frontier AI coding agents on realistic infrastructure engineering problemsApply DevOps, SRE, and cloud expertise to advanced AI evaluationIdentify subtle reliability and operational failure modes in model-generated solutionsCompare multiple coding systems across practical production workflowsParticipate in intensive technical sprints with task-based compensationContract DetailsIndependent contractor roleFully remote with flexible schedulingSprint-based project with task windows typically spanning approximately 12–24 hoursCompensation is $400 per accepted taskTypical tasks require approximately 2–3 hours after ramp-upCompensation is tied to successfully accepted workWork may include infrastructure implementation review, AI coding-agent evaluation, reliability analysis, debugging, and model comparisonWeekly payments via Stripe or WiseProjects may be extended, shortened, or adjusted depending on scope and performanceWork will not involve access to confidential or proprietary information from any employer, client, or institutionAbout the PlatformThis opportunity is available through 24-MAG LLC. We connect experienced professionals with remote consulting opportunities across technical, evaluation, and project-based workstreams.By submitting this application, you acknowledge that your information may be processed by 24-MAG LLC for recruitment and opportunity matching in accordance with our Privacy Policy: https://www.24-mag.com/privacy-policy.