{"version":"0.1","company":{"name":"YubHub","url":"https://yubhub.co","jobsUrl":"https://yubhub.co/jobs/skill/conducting-research"},"x-facet":{"type":"skill","slug":"conducting-research","display":"Conducting Research","count":1},"x-feed-size-limit":100,"x-feed-sort":"enriched_at desc","x-feed-notice":"This feed contains at most 100 jobs (the most recently enriched). For the full corpus, use the paginated /stats/by-facet endpoint or /search.","x-generator":"yubhub-xml-generator","x-rights":"Free to redistribute with attribution: \"Data by YubHub (https://yubhub.co)\"","x-schema":"Each entry in `jobs` follows https://schema.org/JobPosting. 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This role is ideal for someone who thrives in complex, high-scale systems, who brings thought leadership to ML strategy, and who raises the bar for engineering rigor, curiosity, and business-driven decision making across the team.</p>\n<p>Microsoft’s mission is to empower every person and every organization on the planet to achieve more. As employees we come together with a growth mindset, innovate to empower others, and collaborate to realize our shared goals. Each day we build on our values of respect, integrity, and accountability to create a culture of inclusion where everyone can thrive at work and beyond.</p>\n<p>Starting January 26, 2026, Microsoft AI (MAI) employees who live within a 50- mile commute of a designated Microsoft office in the U.S. or 25-mile commute of a non-U.S., country-specific location are expected to work from the office at least four days per week. This expectation is subject to local law and may vary by jurisdiction.</p>\n<p>Responsibilities:</p>\n<p>ML / Modeling Leadership</p>\n<p>Lead the end-to-end development of large-scale CTR and other user response signal models for Search and Display ads.</p>\n<p>Design, prototype, and ship cutting-edge ML architectures (deep models, multi-task, transformer-based, LLM-assisted, multimodal).</p>\n<p>Define long-term modeling strategy and roadmap with clear business impact.</p>\n<p>Technical &amp; Engineering Execution</p>\n<p>Modernize our current modeling pipelines, addressing critical technical debt in data flows, training pipelines, and inference systems.</p>\n<p>Partner closely with engineering teams to improve reliability, monitoring, and performance of distributed training and online serving.</p>\n<p>Introduce best practices for experiment design, ablations, feature validation, and productionization.</p>\n<p>Business &amp; Product Impact</p>\n<p>Work with PMs, monetization teams, and auction experts to translate business needs into modeling goals.</p>\n<p>Own model performance holistically: quality, stability, latency, and revenue impact.</p>\n<p>Develop frameworks to better understand advertiser value, user behavior, and marketplace dynamics.</p>\n<p>Leadership &amp; 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