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Remote Qa Engineer Jobs in Alaska (NOW HIRING)

Senior Engineer - LLMOps & MLOps

Minto, AK · On-site +1

$108K - $148K/yr

... quality and cost. Infrastructure as Code (IaC): Manage all AI resources using Terraform or ... remote #LI-TS1 Sedgwickis an Equal Opportunity Employer and a Drug-Free Workplace. If you're ...

Senior Engineer - LLMOps & MLOps

Minto, AK · On-site +1

$108K - $148K/yr

... quality and cost. Infrastructure as Code (IaC): Manage all AI resources using Terraform or ... remote #LI-TS1 Sedgwickis an Equal Opportunity Employer and a Drug-Free Workplace. If you're ...

Remote Overview of the United Soccer League (USL) The United Soccer League (USL) is the heartbeat ... Act in a quality assurance role to ensure a uniform display and maintain functionality. * Utilize ...

Remote Overview of the United Soccer League (USL) The United Soccer League (USL) is the heartbeat ... Act in a quality assurance role to ensure a uniform display and maintain functionality. * Utilize ...

Remote Overview of the United Soccer League (USL) The United Soccer League (USL) is the heartbeat ... Act in a quality assurance role to ensure a uniform display and maintain functionality. * Utilize ...

About Us Welcome to PND Engineers, Inc., established in 1979 at the heart of Anchorage, Alaska, and ... improve the quality of life in the communities we serve. Join Us in Shaping the Future PND ...

Partner with engineering and delivery teams to clarify scope and support sprint execution ... Partner with the CTO to scope, validate, deploy, and QA CRM updates with technical readiness.

Showing results 41-60

Remote Qa Engineer information

See Alaska salary details

$20

$52

$84

How much do remote qa engineer jobs pay per hour?

As of Aug 7, 2026, the average hourly pay for remote qa engineer in Alaska is $52.28, according to ZipRecruiter salary data. Most workers in this role earn between $41.15 and $59.81 per hour, depending on experience, location, and employer.

How does a remote QA engineer effectively communicate and collaborate with development teams across different time zones?

Remote QA Engineers often work with development teams spread across various locations and time zones, which can create communication challenges. To ensure smooth collaboration, they typically rely on clear documentation, regular virtual meetings, and asynchronous communication tools like Slack or Jira. Establishing consistent testing processes and providing timely, detailed feedback helps bridge the gap and keeps projects on track. Additionally, being proactive in raising issues and participating in sprint planning or daily stand-ups fosters strong teamwork and project alignment.

What does a remote QA engineer do?

A remote QA (Quality Assurance) engineer is responsible for testing software applications to identify bugs, ensure functionality, and maintain quality standards, all while working from a remote location. They design test cases, execute manual and automated tests, and collaborate with development teams to resolve issues. Remote QA engineers use various tools to track defects, document results, and communicate with team members. Their goal is to ensure that software products are reliable, user-friendly, and meet customer requirements.

What is the difference between Remote Qa Engineer vs Remote Software Tester?

AspectRemote Qa EngineerRemote Software Tester
CredentialsQA certifications, testing tools knowledgeTesting certifications, basic QA knowledge
Work EnvironmentCollaborates with development teams, involved in automationFocuses on manual testing, bug reporting
Industry UsageUsed across tech, finance, healthcare sectorsCommon in software development companies
Search IntentLooking for QA roles with automation and testing skillsSearching for manual testing positions

Remote Qa Engineers typically have a broader role involving automation, test planning, and collaboration with development teams, while Remote Software Testers often focus on manual testing and bug identification. Both roles are essential in software quality assurance but differ in scope and responsibilities.

What does a remote QA engineer do?

As a remote QA engineer, you work from home while collaborating with software development teams to ensure bug-free and functional final products. Remote quality assurance engineering involves working with computer systems and software. As part of your responsibilities, you may test and analyze software performance, develop reports, virtually train personnel on software specifics, and otherwise work to provide flawless services and programs for organizations. You also troubleshoot and repair products, assess computer components via digital networks, and communicate with team members, clients, and superiors remotely. Other duties may require you to travel to job sites occasionally.

Is a remote QA engineer still in demand?

Remote QA engineers are still in demand as companies continue to prioritize software quality and digital transformation. Skills in automation tools, scripting, and familiarity with testing frameworks increase employability in this field, which often offers flexible schedules and requires strong attention to detail.

What are the key skills and qualifications needed to thrive as a remote QA engineer, and why are they important?

To thrive as a Remote QA Engineer, you need strong analytical skills, a solid understanding of software testing methodologies, and typically a degree in computer science or a related field. Familiarity with testing tools like Selenium, JIRA, and CI/CD systems, as well as ISTQB certification, is highly beneficial. Excellent communication, self-motivation, and attention to detail are crucial soft skills for collaborating remotely and ensuring software quality. These abilities are essential for identifying issues early, maintaining high product standards, and effectively contributing to distributed teams.

Can a remote qa engineer work remotely?

A remote QA engineer can work remotely, as quality assurance roles often involve testing software, writing test cases, and using tools like test management systems from any location with internet access. Many companies offer fully remote positions for QA engineers, requiring skills in automation, scripting, and communication tools. However, specific job requirements may vary depending on the employer and project needs.
What are popular job titles related to Remote Qa Engineer jobs in Alaska? For Remote Qa Engineer jobs in Alaska, the most frequently searched job titles are:
What job categories do people searching Remote Qa Engineer jobs in Alaska look for? The top searched job categories for Remote Qa Engineer jobs in Alaska are:
Infographic showing various Remote Qa Engineer job openings in Alaska as of August 2026, with employment types broken down into 91% Full Time, 5% Part Time, and 4% Contract. Highlights an 87% Physical, 4% Hybrid, and 9% Remote job distribution, with an average salary of $108,739 per year, or $52.3 per hour.

Senior Engineer - LLMOps & MLOps

Sedgwick

Minto, AK • On-site, Remote

$108K - $148K/yr

Full-time

Re-posted 29 days ago


Sedgwick rating

7.6

Company rating: 7.6 out of 10

Based on 320 frontline employees who took The Breakroom Quiz

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Job description

By joining Sedgwick, you'll be part of something truly meaningful. It's what our 33,000 colleagues do every day for people around the world who are facing the unexpected. We invite you to grow your career with us, experience our caring culture, and enjoy work-life balance. Here, there's no limit to what you can achieve.

Newsweek Recognizes Sedgwick as America's Greatest Workplaces National Top Companies

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Fortune Best Workplaces in Financial Services & Insurance

Senior Engineer - LLMOps & MLOps

Role Overview

This is a high-stakes, execution-focused role within the Transformation Office. We are looking for a "day-one" engineer to own the production lifecycle of our AI initiatives. Your mission is to build the automated infrastructure that bridges our legacy data systems with modern AWS and Azure AI services. You will be responsible for the "Ops" of AI: ensuring that LLM applications, RAG pipelines, and traditional ML models are deployable, observable, and scalable in a multi-cloud environment.

Key Responsibilities

Multi-Cloud Pipeline Execution: Build and maintain automated CI/CD and CT (Continuous Training) pipelines across AWS (SageMaker/Bedrock) and Azure (AI Studio).

LLMOps Framework Implementation: Design and execute the infrastructure for Retrieval-Augmented Generation (RAG), including vector database management (OpenSearch, Pinecone, or Azure AI Search) and semantic index optimization.

Legacy Data Connectivity: Build the engineering "pipes" to securely ingest and move data from legacy systems (Mainframes, SQL Server, on-prem DBs) into cloud-native MLOps workflows.

Automated Model Evaluation: Implement systemized frameworks for LLM evaluation (LLM-as-a-judge, ROUGE, METEOR) and traditional ML validation to ensure performance before deployment.

Observability & Monitoring: Deploy real-time monitoring for model drift, hallucination detection, latency, and token consumption to manage both quality and cost.

Infrastructure as Code (IaC): Manage all AI resources using Terraform or CloudFormation, ensuring the cloud posture is reproducible, secure, and follows a "Privacy by Design" mandate.

Advanced Analytics Integration: Partner with teams using platforms like Palantir, Databricks, or Snowflake to ensure a high-fidelity data flow between analytical ontologies and production models.

IT & Security Diplomacy: Work directly with central IT and Security to navigate IAM roles, VPC peering, and firewall configurations, clearing the path for rapid transformation.

Scalable Inference Engineering: Optimize model serving endpoints for high-throughput and low-latency, utilizing containerization (Docker/Kubernetes) and serverless architectures where appropriate.

Prompt & Model Versioning: Establish rigorous version control for prompts (PromptOps), model weights, and data snapshots to ensure 100% auditability and rollback capability.

Data Science Engineering: Support the data science lifecycle by automating feature stores, feature engineering pipelines, and the transition of experimental notebooks into hardened production microservices.

Security & Compliance Hardening: Implement automated scanning and guardrails (e.g., Bedrock Guardrails or Azure Content Safety) to prevent prompt injection and data leakage.

Qualifications

Education: Bachelor's degree in Computer Science or a related field required; Master's degree in a quantitative discipline highly desirable.

Proven Execution: 6+ years of engineering experience, with a minimum of 3 years strictly focused on MLOps or LLMOps in a production environment.

AWS & Azure Mastery: Deep, hands-on proficiency in both ecosystems. You must be able to configure Bedrock and Azure OpenAI services, including private networking and endpoint security, on day one.

Technical Stack: Expert Python, SQL, and PySpark. Extensive experience with containerization (Docker, Kubernetes) and orchestration tools (Airflow, Kubeflow, or Step Functions).

LLM Tooling: Professional experience with evaluation and observability frameworks like LangSmith, Arize Phoenix, or WhyLabs.

Data Science Flavor: A strong understanding of statistical validation, model evaluation metrics, and the ability to partner with Data Scientists to optimize model performance.

Transformation Mindset: The ability to move at the speed of a startup while maintaining the collaborative relationships required to function within a large-scale enterprise IT landscape.

#remote #LI-TS1

Sedgwickis an Equal Opportunity Employer and a Drug-Free Workplace.

If you're excited about this role but your experience doesn't align perfectly with every qualification in the job description, consider applying for it anyway! Sedgwick is building a diverse, equitable, and inclusive workplace and recognizes that each person possesses a unique combination of skills, knowledge, and experience. You may be just the right candidate for this or other roles.

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