Resume and JobRESUME AND JOB
Apple logo

Claris - Backend AI Engineer In Test

Apple

Claris - Backend AI Engineer In Test

Apple logo

Apple

full-time

Posted: November 3, 2025

Number of Vacancies: 1

Job Description

At Claris, an Apple company, we're transforming how knowledge workers interact with applications—shifting from static, deterministic workflows to adaptive, intelligent systems powered by innovative Artificial Intelligence. We're not just adding AI features; we're building a trustworthy AI platform from the ground up, where security, privacy, and reliability are foundational principles inspired by Apple's unwavering commitment to user protection. We're looking for an experienced backend QA engineer who combines deep expertise in traditional quality assurance with hands-on knowledge of AI/LLM systems. This is an opportunity to shape how enterprise AI is validated and evolved, while bringing rigorous testing rigor to emerging technology. If you're passionate about testing scalable cloud-based applications, understand both API-driven microservices and AI workflows, and are excited by the challenge of validating next-generation intelligent systems, this is your team. We are seeking an experienced QA Engineer to join our backend team at the intersection of high-performance infrastructure and AI validation. You'll work with a Go-based microservices architecture optimized for performance, paired with a Python AI service layer using large language models. Your core mission is architecting comprehensive testing and evaluation strategies for our backend platform—with a growing focus on AI-powered workflows. This means designing frameworks that validate complete flows from user request through service execution to final outcome, with special attention to AI-specific concerns. You'll develop systematic testing approaches for both deterministic microservices and non-deterministic AI models. You'll build observability systems that ensure behavior remains trustworthy in production. You'll need deep understanding of Cloud concepts, scalable microservice architecture, and modern testing practices. Equally important is understanding how AI integration impacts quality assurance—how to evaluate LLM outputs, design guardrails, and validate that AI recommendations integrate cleanly into backend workflows. You'll transform innovative AI research into reliable, production-ready solutions that organizations depend on, while maintaining the rigorous engineering rigor that makes our platform trustworthy. We are looking for a technically excellent, strategic problem solver who brings deep backend QA expertise combined with genuine curiosity about AI. The ideal candidate combines years of production quality assurance experience with foundational AI knowledge, strong communication skills, and ability to thrive in cross-functional collaboration. You understand that great QA isn't just finding bugs—it's building confidence that systems work reliably at scale. You're eager to apply proven QA rigor to the emerging challenge of AI validation.

Locations

  • Sunnyvale, California, United States 94085

Salary

Estimated Salary Rangemedium confidence

25,000,000 - 60,000,000 INR / yearly

Source: ai estimated

* This is an estimated range based on market data and may vary based on experience and qualifications.

Skills Required

  • deep expertise in traditional quality assuranceintermediate
  • hands-on knowledge of AI/LLM systemsintermediate
  • testing scalable cloud-based applicationsintermediate
  • understanding of API-driven microservicesintermediate
  • understanding of AI workflowsintermediate
  • validating next-generation intelligent systemsintermediate
  • architecting comprehensive testing and evaluation strategiesintermediate
  • designing frameworks that validate complete flowsintermediate
  • developing systematic testing approaches for deterministic microservicesintermediate
  • developing systematic testing approaches for non-deterministic AI modelsintermediate
  • building observability systemsintermediate
  • deep understanding of Cloud conceptsintermediate
  • deep understanding of scalable microservice architectureintermediate
  • deep understanding of modern testing practicesintermediate
  • understanding how AI integration impacts quality assuranceintermediate
  • evaluating LLM outputsintermediate
  • designing guardrailsintermediate
  • validating AI recommendations integration into backend workflowsintermediate
  • transforming AI research into production-ready solutionsintermediate
  • maintaining rigorous engineering rigorintermediate
  • backend QA expertiseintermediate
  • foundational AI knowledgeintermediate
  • strong communication skillsintermediate
  • ability to thrive in cross-functional collaborationintermediate
  • strategic problem solvingintermediate
  • proficiency in Go-based microservices architectureintermediate
  • proficiency in Python AI service layerintermediate
  • using large language modelsintermediate

Required Qualifications

  • 3 to 5+ years of hands-on experience with production-level backend QA, with expertise in testing scalable, fault-tolerant SaaS applications and microservices. (experience, 5 years)
  • Strong experience with Go or Python programming languages and testing tools/frameworks (e.g., Ginkgo, Pytest). (experience)
  • Demonstrated ability to build clear, comprehensive test scenarios and systematic testing strategies for complex distributed systems. (experience)
  • Strong understanding of RESTful API design, microservices architecture, and testing modern, scalable backend systems. (experience)
  • Foundational knowledge of LLM/ AI concepts and hands-on exposure to testing AI-powered features, prompt engineering, or LLM API integration in a production environment. (experience)

Preferred Qualifications

  • Experience with testing solutions using WebSockets and webhooks. Familiar with OAuth and Single-Sign-On authentication. (experience)
  • Familiar with containerization (Docker, Kubernetes) and cloud environments (AWS or GCP). (experience)
  • Practical experience with adversarial testing, security validation, or evaluating LLM outputs for safety and quality concerns. (experience)
  • Knowledge of LangChain, LangGraph, or other AI frameworks, and observability platforms for monitoring AI system behavior. (experience)
  • Familiarity with implementing guardrails, safety constraints, or quality evaluation frameworks for AI systems. (experience)
  • Experience with NoSQL databases is desired. (experience)

Responsibilities

  • We are seeking an experienced QA Engineer to join our backend team at the intersection of high-performance infrastructure and AI validation. You'll work with a Go-based microservices architecture optimized for performance, paired with a Python AI service layer using large language models.
  • Your core mission is architecting comprehensive testing and evaluation strategies for our backend platform—with a growing focus on AI-powered workflows. This means designing frameworks that validate complete flows from user request through service execution to final outcome, with special attention to AI-specific concerns. You'll develop systematic testing approaches for both deterministic microservices and non-deterministic AI models. You'll build observability systems that ensure behavior remains trustworthy in production.
  • You'll need deep understanding of Cloud concepts, scalable microservice architecture, and modern testing practices. Equally important is understanding how AI integration impacts quality assurance—how to evaluate LLM outputs, design guardrails, and validate that AI recommendations integrate cleanly into backend workflows. You'll transform innovative AI research into reliable, production-ready solutions that organizations depend on, while maintaining the rigorous engineering rigor that makes our platform trustworthy.
  • We are looking for a technically excellent, strategic problem solver who brings deep backend QA expertise combined with genuine curiosity about AI. The ideal candidate combines years of production quality assurance experience with foundational AI knowledge, strong communication skills, and ability to thrive in cross-functional collaboration. You understand that great QA isn't just finding bugs—it's building confidence that systems work reliably at scale. You're eager to apply proven QA rigor to the emerging challenge of AI validation.

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Apple logo

Claris - Backend AI Engineer In Test

Apple

Claris - Backend AI Engineer In Test

Apple logo

Apple

full-time

Posted: November 3, 2025

Number of Vacancies: 1

Job Description

At Claris, an Apple company, we're transforming how knowledge workers interact with applications—shifting from static, deterministic workflows to adaptive, intelligent systems powered by innovative Artificial Intelligence. We're not just adding AI features; we're building a trustworthy AI platform from the ground up, where security, privacy, and reliability are foundational principles inspired by Apple's unwavering commitment to user protection. We're looking for an experienced backend QA engineer who combines deep expertise in traditional quality assurance with hands-on knowledge of AI/LLM systems. This is an opportunity to shape how enterprise AI is validated and evolved, while bringing rigorous testing rigor to emerging technology. If you're passionate about testing scalable cloud-based applications, understand both API-driven microservices and AI workflows, and are excited by the challenge of validating next-generation intelligent systems, this is your team. We are seeking an experienced QA Engineer to join our backend team at the intersection of high-performance infrastructure and AI validation. You'll work with a Go-based microservices architecture optimized for performance, paired with a Python AI service layer using large language models. Your core mission is architecting comprehensive testing and evaluation strategies for our backend platform—with a growing focus on AI-powered workflows. This means designing frameworks that validate complete flows from user request through service execution to final outcome, with special attention to AI-specific concerns. You'll develop systematic testing approaches for both deterministic microservices and non-deterministic AI models. You'll build observability systems that ensure behavior remains trustworthy in production. You'll need deep understanding of Cloud concepts, scalable microservice architecture, and modern testing practices. Equally important is understanding how AI integration impacts quality assurance—how to evaluate LLM outputs, design guardrails, and validate that AI recommendations integrate cleanly into backend workflows. You'll transform innovative AI research into reliable, production-ready solutions that organizations depend on, while maintaining the rigorous engineering rigor that makes our platform trustworthy. We are looking for a technically excellent, strategic problem solver who brings deep backend QA expertise combined with genuine curiosity about AI. The ideal candidate combines years of production quality assurance experience with foundational AI knowledge, strong communication skills, and ability to thrive in cross-functional collaboration. You understand that great QA isn't just finding bugs—it's building confidence that systems work reliably at scale. You're eager to apply proven QA rigor to the emerging challenge of AI validation.

Locations

  • Sunnyvale, California, United States 94085

Salary

Estimated Salary Rangemedium confidence

25,000,000 - 60,000,000 INR / yearly

Source: ai estimated

* This is an estimated range based on market data and may vary based on experience and qualifications.

Skills Required

  • deep expertise in traditional quality assuranceintermediate
  • hands-on knowledge of AI/LLM systemsintermediate
  • testing scalable cloud-based applicationsintermediate
  • understanding of API-driven microservicesintermediate
  • understanding of AI workflowsintermediate
  • validating next-generation intelligent systemsintermediate
  • architecting comprehensive testing and evaluation strategiesintermediate
  • designing frameworks that validate complete flowsintermediate
  • developing systematic testing approaches for deterministic microservicesintermediate
  • developing systematic testing approaches for non-deterministic AI modelsintermediate
  • building observability systemsintermediate
  • deep understanding of Cloud conceptsintermediate
  • deep understanding of scalable microservice architectureintermediate
  • deep understanding of modern testing practicesintermediate
  • understanding how AI integration impacts quality assuranceintermediate
  • evaluating LLM outputsintermediate
  • designing guardrailsintermediate
  • validating AI recommendations integration into backend workflowsintermediate
  • transforming AI research into production-ready solutionsintermediate
  • maintaining rigorous engineering rigorintermediate
  • backend QA expertiseintermediate
  • foundational AI knowledgeintermediate
  • strong communication skillsintermediate
  • ability to thrive in cross-functional collaborationintermediate
  • strategic problem solvingintermediate
  • proficiency in Go-based microservices architectureintermediate
  • proficiency in Python AI service layerintermediate
  • using large language modelsintermediate

Required Qualifications

  • 3 to 5+ years of hands-on experience with production-level backend QA, with expertise in testing scalable, fault-tolerant SaaS applications and microservices. (experience, 5 years)
  • Strong experience with Go or Python programming languages and testing tools/frameworks (e.g., Ginkgo, Pytest). (experience)
  • Demonstrated ability to build clear, comprehensive test scenarios and systematic testing strategies for complex distributed systems. (experience)
  • Strong understanding of RESTful API design, microservices architecture, and testing modern, scalable backend systems. (experience)
  • Foundational knowledge of LLM/ AI concepts and hands-on exposure to testing AI-powered features, prompt engineering, or LLM API integration in a production environment. (experience)

Preferred Qualifications

  • Experience with testing solutions using WebSockets and webhooks. Familiar with OAuth and Single-Sign-On authentication. (experience)
  • Familiar with containerization (Docker, Kubernetes) and cloud environments (AWS or GCP). (experience)
  • Practical experience with adversarial testing, security validation, or evaluating LLM outputs for safety and quality concerns. (experience)
  • Knowledge of LangChain, LangGraph, or other AI frameworks, and observability platforms for monitoring AI system behavior. (experience)
  • Familiarity with implementing guardrails, safety constraints, or quality evaluation frameworks for AI systems. (experience)
  • Experience with NoSQL databases is desired. (experience)

Responsibilities

  • We are seeking an experienced QA Engineer to join our backend team at the intersection of high-performance infrastructure and AI validation. You'll work with a Go-based microservices architecture optimized for performance, paired with a Python AI service layer using large language models.
  • Your core mission is architecting comprehensive testing and evaluation strategies for our backend platform—with a growing focus on AI-powered workflows. This means designing frameworks that validate complete flows from user request through service execution to final outcome, with special attention to AI-specific concerns. You'll develop systematic testing approaches for both deterministic microservices and non-deterministic AI models. You'll build observability systems that ensure behavior remains trustworthy in production.
  • You'll need deep understanding of Cloud concepts, scalable microservice architecture, and modern testing practices. Equally important is understanding how AI integration impacts quality assurance—how to evaluate LLM outputs, design guardrails, and validate that AI recommendations integrate cleanly into backend workflows. You'll transform innovative AI research into reliable, production-ready solutions that organizations depend on, while maintaining the rigorous engineering rigor that makes our platform trustworthy.
  • We are looking for a technically excellent, strategic problem solver who brings deep backend QA expertise combined with genuine curiosity about AI. The ideal candidate combines years of production quality assurance experience with foundational AI knowledge, strong communication skills, and ability to thrive in cross-functional collaboration. You understand that great QA isn't just finding bugs—it's building confidence that systems work reliably at scale. You're eager to apply proven QA rigor to the emerging challenge of AI validation.

Target Your Resume for "Claris - Backend AI Engineer In Test" , Apple

Get personalized recommendations to optimize your resume specifically for Claris - Backend AI Engineer In Test. Takes only 15 seconds!

AI-powered keyword optimization
Skills matching & gap analysis
Experience alignment suggestions

Check Your ATS Score for "Claris - Backend AI Engineer In Test" , Apple

Find out how well your resume matches this job's requirements. Get comprehensive analysis including ATS compatibility, keyword matching, skill gaps, and personalized recommendations.

ATS compatibility check
Keyword optimization analysis
Skill matching & gap identification
Format & readability score

Tags & Categories

Hardware

Related Jobs You May Like

No related jobs found at the moment.