Synced from Greenhouse · Aug 27

QA Engineer

ElasticBangalore, IndiaPosted Aug 27, 2026
QA EngineerMid
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Mirrored from Elastic's own Greenhouse careers system · refreshed hourly

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Aug 27
Posted
Greenhouse
Applicant system
Job descriptionReq 8154997

This role is no longer accepting applications.

Elastic, the Search AI Company, enables everyone to find the answers they need in real time, using all their data, at scale — unleashing the potential of businesses and people. The Elastic Search AI Platform, used by more than 50% of the Fortune 500, brings together the precision of search and the intelligence of AI to enable everyone to accelerate the results that matter. By taking advantage of all structured and unstructured data — securing and protecting private information more effectively — Elastic’s complete, cloud-based solutions for search, security, and observability help organizations deliver on the promise of AI.

What is The Role

We are looking for a skilled QA & Evaluation Engineer to join our team. The role blends strategic QA leadership with hands-on technical validation and structured evaluation to safeguard the accuracy, reliability, compliance, and ethical use of AI models. You will partner across IT and Engineering teams to identify, design, implement and run robust testing frameworks and evaluation rubrics for a portfolio of GenAI solutions that will be used across our organization.

What You Will Be Doing

  • Be a primary contributor to our AI strategy, helping validate and test AI infrastructure, custom solutions and third-party SaaS offerings.
  • Test Strategy & Execution: Design and implement comprehensive test strategies for AI/ML systems, including accuracy, bias, robustness, and regression testing.
  • Rubric-Based Evaluation: Design and implement self-contained evaluation tasks, including prompts, supporting files, and detailed grading rubrics to assess AI performance on functional workflows.
  • Automation & CI/CD: Automate validation suites for agentic/multi-agent systems, integration testing, and CI/CD pipelines for ML models.
  • Data Validation: Validate that AI/ML models are consuming accurate, authorized, and properly structured data sources; ensuring data quality across training and inference.
  • Observation & Reporting: Meticulously observe and document AI agent behaviors, producing crisp, precise summaries and reports on model performance and hallucinations.
  • Output Grounding: Validate prompt engineering outputs from a data accuracy standpoint, ensuring responses are grounded in verified data sources.
  • Refinement & Iteration: Iterate and refine evaluation tasks and rubrics based on feedback and team collaboration to ensure robust benchmarking methodologies.
  • Security & Governance: Ensure all AI data sources and structures meet governance, regulatory, and compliance standards, while implementing best practices for security and data privacy.
  • Collaborate with teams from different areas. These areas include IT Engineering, IT Operations, Data & Integrations, PMO, CRM, Risk & Compliance, and business technology.
  • Stay current on the latest work in AI and make technical recommendations to the organization.

What You Bring

  • Proficiency in Python, TypeScript, or other programming languages used in AI and test automation.
  • Proven skill in designing or applying rubric-based evaluation, grading against set criteria, or building structured scoring frameworks.
  • Direct experience with LLM evaluation frameworks and benchmarking tools such as LangSmith, Confident AI, etc.
  • Knowledge of the GenAI stack and solutions including Retrieval Augmented Generation (RAG).
  • LLMs: Azure OpenAI, Vertex AI, ChatGPT Enterprise or similar.
  • High attention to detail and ability to notice subtle patterns or inconsistencies (such as data hallucinations or logic errors) that others might miss.
  • Advanced written communication skills, especially for documenting nuanced observations and feedback.
  • Experience with Cloud platforms (Azure, GCP, AWS).
  • Thorough understanding of DevOps/automation/CI/CD tools: GitHub, Terraform.
  • Comprehension with AI ethics, risk management, and data governance.

 

Additional Information - We Take Care of Our People

As a distributed company, diversity drives our identity. Whether you’re looking to launch a new career or grow an existing one, Elastic is the type of company where you can balance great work with great life. Your age is only a number. It doesn’t matter if you’re just out of college or your children are; we need you for what you can do.

We strive to have parity of benefits across regions and while regulations differ from place to place, we believe taking care of our people is the right thing to do.

  • Competitive pay based on the work you do here and not your previous salary
  • Health coverage for you and your family in many locations
  • Ability to craft your calendar with flexible locations and schedules for many roles
  • Generous number of vacation days each year
  • Increase your impact - We match up to $2000 (or local currency equivalent) for financial donations and service
  • Up to 40 hours each year to use toward volunteer projects you love
  • Embracing parenthood with minimum of 16 weeks of parental leave

Different people approach problems differently. We need that. Elastic is an equal opportunity employer and is committed to creating an inclusive culture that celebrates different perspectives, experiences, and backgrounds. Qualified applicants will receive consideration for employment without regard to race, ethnicity, color, religion, sex, pregnancy, sexual orientation, gender perception or identity, national origin, age, marital status, protected veteran status, disability status, or any other basis protected by federal, state or local law, ordinance or regulation.

We welcome individuals with disabilities and strive to create an accessible and inclusive experience for all individuals. To request an accommodation during the application or the recruiting process, please email candidate_accessibility@elastic.co. We will reply to your request within 24 business hours of submission.

Applicants have rights under Federal Employment Laws, view posters linked below: Family and Medical Leave Act (FMLA) Poster; Pay Transparency Nondiscrimination Provision Poster; Employee Polygraph Protection Act (EPPA) Poster and Know Your Rights (Poster)

Elasticsearch develops and distributes technology and information that is subject to U.S. and other countries’ export controls and licensing requirements for individuals who are located in or are nationals of the following sanctioned countries and regions: Belarus, Cuba, Iran, North Korea, Syria, or Russia, including the Ukrainian territories annexed by Russia (The Crimea region of Ukraine, The Donetsk People's Republic (DNR), The Luhansk People's Republic (LNR), Kherson or Zaporizhzhia). If you are located in or are a national of one of the listed countries or regions, an export license may be required as a condition of your employment in this role. Please note that national origin and/or nationality do not affect eligibility for employment with Elastic.

Please see here for our Privacy Statement.

What applying to Elastic usually looks like

Based on publicly available information, candidates applying through greenhouse for roles at Elastic can generally expect a process consistent with common greenhouse-based hiring flows. This typically starts with an online application and resume screen, followed by a recruiter phone conversation to discuss background and role fit. From there, candidates may encounter multiple stages, which can include hiring manager interviews, technical or role-specific assessments, and panel discussions with potential teammates or stakeholders. Response times vary and communication is often handled through automated greenhouse email updates alongside recruiter outreach. Some roles may involve take-home exercises or case studies depending on function, particularly for technical, sales, or analytical positions. Candidates should prepare to articulate relevant experience clearly, as greenhouse-based processes commonly emphasize structured, criteria-based evaluation across each stage of the interview process.

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