Staff Applied Scientist - Agentic Interfaces
Datadog
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Skills named in this job
Read from the description itself, not inferred.
This role on the market
17 open interfaces roles across 12 companies are on ApplySarthi right now, most of them in Hyderabad (3), Bengaluru (1).
- Design Engineer Intern 2027 - Design and Build AI-Native InterfacesIBM
- G7 Fellow – High-Speed Interfaces & Clocking StrategyNxp
- Business Analyst - Interfaces, OfficerStatestreet · hyderabad
- Software Development Engineer II — Ads Reporting, Programmatic Reporting InterfacesAmazon Development Centre Canada ULC
- Systems Engineer - Sys Architecting, Requirements & Interfaces (Experienced, Lead)Boeing
What interfaces roles keep asking for: Java (18%) — counted across their open postings here.
Applied Scientist jobs in the United States · Applied Scientist jobs in New York · Remote Applied Scientist jobs · Generative AI jobs · Observability jobs
Datadog has 454 open roles listed here.
- Senior Application Security Engineer
- Senior Product Marketing Manager
- Manager 2, Technical Enablement Management
- People Business Partner
- Principal Growth Marketing Manager - SEO/GEO
Counted across 14 company job boards, updated as roles open and close.
Preparing for this interview
Interviews for interfaces roles keep coming back to Java. Practise those questions before you sit with Datadog.
Questions you are likely to be asked
- Why do you want to join Datadog?
- What is your experience with Observability? Tell me one thing you learned the hard way.
- Tell me about a problem you solved at work that you are proud of.
- Tell me about a time you disagreed with your manager. What happened?
- Where do you want to be in three years?
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Team description
At Datadog, AI agents are becoming first-class consumers of observability, security, and software delivery data — from third-party coding agents like Claude Code, Cursor, and Copilot, to our own Bits SRE, Bits Assistant, and Bits Dev Agent. The Agentic Interfaces team owns the platform that connects these agents to Datadog: the MCP Server, the tools and retrieval surfaces agents call into, and — critically — the evaluation systems that tell us whether an agent's experience on Datadog data is actually getting better over time.
This role is about that last piece. We're hiring a Staff Applied Scientist to define what "good" means for an Agentic interface at Datadog and to build the measurement systems that make it true. "Good" isn't one number — it spans answer quality, tool-selection accuracy, retrieval relevance, latency, token cost, and end-to-end agent success on real customer workflows. You'll design the evals, build the datasets, define the metrics, and partner with the AI engineers on the team to land the platform that lets every product group at Datadog ship integrations that are demonstrably better release over release.
The space is full of open research questions. How do you evaluate an agent end-to-end when the trajectory is non-deterministic? How do you score tool selection when the tool catalog has hundreds of entries and grows weekly? How do you build a measurement system that catches regressions across first-party and third-party agents at once, without each team writing their own harness? If those are the problems you want to spend your time on, come build this with us.
Datadog values people from all walks of life. We understand not everyone will meet all the above qualifications on day one. That's okay. If you’re passionate about technology and want to grow your skills, we encourage you to apply.
What You’ll Do:
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Own the evaluation strategy for Datadog's AI agent integrations. Define the metrics — offline and online, quality and cost, single-turn and trajectory-level — that the team and the broader organization optimize against.
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Build the eval datasets, golden traces, and regression harnesses that catch quality changes before they hit customers, and make those assets reusable by every team contributing tools to the platform.
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Drive measurable improvements to retrieval relevance, tool-selection accuracy, and context efficiency, partnering closely with the AI engineers on the team who build the underlying platform.
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Run applied research on the open problems in agent–data interaction: tool selection under large catalogs, multi-turn agent evaluation, grounding and hallucination control on live telemetry, cost/quality tradeoffs at scale.
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Partner with the Bits SRE, Bits Assistant, and Bits Dev Agent teams so first-party agents benefit from the same measurement substrate as third-party integrations, and so learnings move freely in both directions.
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Provide technical leadership across the Agentic Interfaces team and the broader organization through design reviews, working groups, and mentorship, and represent the team externally through talks, blog posts, and contributions to the open agent ecosystem.
Who You Are:
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You have a BS/MS/PhD in a scientific field, or equivalent experience.
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10+ years of relevant engineering or applied science experience, including time as a technical lead.
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Proven track record of leading ML or GenAI initiatives in a product-driven environment, from research through production.
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Significant experience with evaluation, experimentation, or measurement of ML systems at scale.
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You bring a strong product mindset and are comfortable driving initiatives across cross-functional teams.
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You thrive in ambiguity and can make sound technical calls when the path isn’t yet defined.
Benefits and Growth:
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New hire stock equity (RSUs) and employee stock purchase plan (ESPP)
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Continuous professional development, product training, and career pathing
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An inclusive company culture, giving programs, and the ability to join our Community Guilds (Datadog employee resource groups)
- Competitive global benefits and global Spring Health benefits for employees and dependents age 6+
#LI-Onsite
Datadog offers a competitive salary and equity package, and may include variable compensation. Actual compensation is based on factors such as the candidate's skills, qualifications, and experience. In addition, Datadog offers a wide range of best in class, comprehensive and inclusive employee benefits for this role including healthcare, dental, parental planning, and mental health benefits, a 401(k) plan and match, paid time off, fitness reimbursements, and a discounted employee stock purchase plan.
About Datadog:
Datadog is the leading observability and security platform for the AI era, providing businesses with unified visibility across the technology stack to manage complexity at scale. It brings applications, infrastructure, data, models, and security into one place, using AI to detect and resolve issues before they impact customers. Trusted globally by Fortune 500 companies and high-growth AI leaders, Datadog enables businesses to move faster with clarity and confidence. Learn more about #DatadogLife on Instagram, LinkedIn, and Datadog Learning Center.
Equal Opportunity at Datadog:
Datadog is proud to offer equal employment opportunity to everyone regardless of race, color, ancestry, religion, sex, national origin, sexual orientation, age, citizenship, marital status, disability, gender identity, veteran status, and other characteristics protected by law. We also consider qualified applicants regardless of criminal histories, consistent with legal requirements. Here are our Candidate Legal Notices for your reference.
Datadog endeavors to make our Careers Page accessible to all users. If you would like to contact us regarding the accessibility of our website or need assistance completing the application process, please complete this form. This form is for accommodation requests only and cannot be used to inquire about the status of applications.
Privacy and AI Guidelines:
Any information you submit to Datadog as part of your application will be processed in accordance with Datadog’s Applicant and Candidate Privacy Notice. For information on our AI policy, please visit Interviewing at Datadog AI Guidelines.
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Listed on greenhouse · posted 2026-05-29. ApplySarthi collects openings and links to application pages; the role is advertised by Datadog, not by us.