A remote QA role at CrowdStrike.
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This role is part of CrowdStrike’s Core Tech, Go To Market IT Apps Team — a team of Architects, Engineers, QA, BSAs, and Product Owners delivering highly Reliable, Scalable, and Secure Infrastructure and Automation Services across GTM Applications to Accelerate Business Velocity and Operational Excellence. As part of the GTM AI Pod, every member is expected to embrace Agentic AI technologies, operate with an open-source AI engineering mindset, and actively contribute to building the next generation of intelligent GTM workflows.
As the QA Engineer for the GTM AI Pod, you are the quality guardian for a workstream that builds non-deterministic AI systems — and that distinction matters. Traditional QA playbooks were designed for deterministic software; they break down the moment you introduce LLMs, autonomous agents, and probabilistic retrieval pipelines. This role requires you to rethink quality from first principles: designing evaluation frameworks that account for variable outputs, defining what ‘correct’ means for an agentic workflow, and building repeatable test suites that give engineers and stakeholders genuine confidence across every release. You will be embedded in the delivery team from requirements through production, owning the test strategy, automation framework, and quality bar for all workstream deliverables — spanning Salesforce integrations, Slack applications, RAG pipelines, agentic workflows, and the cloud infrastructure that ties them together.
Shift Time: 2.00 pm - 11.00 pm IST
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Define and own the end-to-end test strategy for agentic AI workstreams, establishing quality standards that account for the probabilistic, non-deterministic nature of LLM-powered systems.
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Design and implement AI-specific evaluation frameworks covering hallucination detection, prompt quality scoring, agent task completion rates, and output faithfulness against ground-truth references.
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Build and maintain automated test suites in Python using frameworks ( pytest, robot framework etc ) covering unit, integration, and system-level scenarios across all workstream components.
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Develop RAG pipeline test coverage including retrieval precision and recall, semantic relevance scoring, context faithfulness, and end-to-end query-to-answer accuracy using tools such as RAGAS.
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Design and Build QA automation tests leveraging industry-standard tools and technologies, encompassing functional, regression, and end-to-end integration testing across connected systems and platforms.
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Build and execute Slack integration test suites validating bot response correctness, Workflow Builder trigger fidelity, agentic Slack bot state management, and error handling under edge-case inputs.
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Integrate automated tests into CI/CD pipelines (GitHub Actions, Copado, Jenkins) so every pull request is gated by a defined quality bar before merge.
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Design and execute performance and load tests for LLM-powered APIs, measuring latency percentiles, token throughput, and degradation patterns under concurrent load.
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Conduct security and adversarial testing including prompt injection attempts, output validation for sensitive data leakage, and collaboration with the DevSecOps team on SAST/DAST pipeline findings.
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Develop a regression strategy for non-deterministic outputs, defining acceptable variance thresholds, snapshot-based comparisons, and statistical scoring methods that flag genuine regressions without false positives.
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Validate observability stack completeness — confirm that distributed tracing, structured logging, SLOs, and AI-specific metrics (latency, token throughput, hallucination rates) are instrumented correctly and alerting as expected.
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Collaborate with engineers and the AI Product Owner from requirements grooming through sprint review, contributing testability requirements, acceptance criteria, and definition-of-done checklists.
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Own API contract testing across internal and third-party integrations (Salesforce, Marketo, Snowflake, Gong, Clari, G-Suite) using tools such as Postman or REST-assured.
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Drive defect lifecycle ownership: triage, severity classification, root cause analysis, regression prevention, and post-release quality retrospectives that feed back into the test strategy.
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Champion a shift-left quality culture, coaching engineers to write testable code, instrument their own unit tests, and treat quality as a shared team responsibility rather than a gate at the end of the sprint.
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Bachelor’s degree in Computer Science, Engineering, Information Systems, or a related field.
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6+ years of QA or SDET experience, with a track record of building and maintaining automated test frameworks in production environments.
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Hands-on experience testing AI or ML systems, with a solid understanding of why non-deterministic outputs require different evaluation strategies than conventional software.
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Strong proficiency in Python for test automation, including designing reusable test utilities, fixtures, mocks, and data factories.
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Experience with test frameworks and tooling such as pytest, Selenium, Playwright, REST-assured, Postman, or equivalent.
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Practical understanding of LLM behaviour including temperature effects, token limits, prompt sensitivity, and failure modes that impact test reproducibility.
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Hands-on Salesforce QA testing experience encompassing validation of Lightning Web Component (LWC) behaviors, Platform Event flows, and API integrations.
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API testing proficiency across REST endpoints, including contract validation, schema conformance, payload verification, and error-path coverage.
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Experience integrating automated tests into CI/CD pipelines so quality gates are enforced automatically on every code change.
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Familiarity with RAG evaluation metrics — faithfulness, answer relevance, context recall — and tooling such as RAGAS or LangSmith for structured AI output evaluation.
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Experience with performance and load testing tools (Locust, k6, JMeter, or similar) to validate LLM-powered API behaviour under realistic and peak load.
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Working knowledge of security testing basics: prompt injection, output sanitisation, OWASP top-10 awareness, and coordination with DevSecOps tooling.
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ISTQB Advanced Test Analyst certification or equivalent recognised QA certification.
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Salesforce certifications such as Platform App Builder, Platform Developer I, or Salesforce Administrator that support deeper integration test design.
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Experience with AI evaluation frameworks and observability platforms such as RAGAS, LangSmith, Datadog LLM Observability, or OpenTelemetry for AI workloads.
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Hands-on experience testing Slack applications, including event-driven webhook testing, slash command validation, and agentic Slack bot conversation-flow coverage.
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Contributions to open-source test tooling, evaluation libraries, or QA frameworks relevant to AI systems or enterprise integrations.
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Exposure to chaos engineering or adversarial ML testing methodologies, including fault-injection, boundary testing, and red-teaming LLM-powered agents.
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Familiarity with observability and APM tooling (Datadog, Grafana, OpenTelemetry) and the ability to validate that instrumentation is correctly implemented.
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Prior experience in a cybersecurity, fintech, or high-compliance software environment where quality standards carry regulatory or contractual weight.
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CrowdStrike
QA
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CrowdStrike Holdings, Inc. is an American cybersecurity technology company based in Austin, Texas. It provides endpoint security, threat intelligence, and cyberattack response services. The company was co-founded in 2011 by George Kurtz, Dmitri Alperovitch, and Gregg Marston. Kurtz serves as the CEO. CrowdStrike went public on the Nasdaq in 2019 and joined the S&P 500 index in 2024.
Source: Wikipedia