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  <jobs>
    <job>
      <externalid>db261609-388</externalid>
      <Title>Principal Data &amp; Ontology Architect - AI Enablement</Title>
      <Description><![CDATA[<p>We are looking for a Principal Data &amp; Ontology Architect to support the implementation and adoption of data and ontology enablement practices and standards within Control Tower Operations to support scalable, governed, and business-aligned AI initiatives.</p>
<p>The successful candidate will serve as the primary bridge between Business Units, Global IT, and Control Tower Operations, ensuring shared understanding of data practices, workflows, and requirements. They will apply established standards for semantic modeling, domain alignment, concept reuse, and ontology lifecycle management.</p>
<p>Key responsibilities include:</p>
<ul>
<li>Supporting the implementation and ongoing maintenance of ontology enablement practices and operating model strategy to support AI, analytics, and digital initiatives across multiple Business Units</li>
<li>Applying established standards for semantic modeling, domain alignment, concept reuse, and ontology lifecycle management</li>
<li>Serving as the enterprise subject-matter authority for ontology-related topics, providing recommendations and guidance to governance and leadership forums</li>
<li>Collaborating with Global IT and enterprise data architecture to ensure ontology practices align with enterprise data platforms and Control Tower operational processes</li>
</ul>
<ul>
<li>Partnering with Business Units to understand domain concepts, terminology, operational data, and AI use cases, translating them into ontology-aligned data structures</li>
<li>Guiding Business Units in contributing domain models, metadata, and data assets into the enterprise ontology using defined governance and intake processes</li>
<li>Enabling repeatable onboarding of Business Unit data into AI initiatives, reducing reliance on ad-hoc IT engagement and minimizing duplicated effort</li>
</ul>
<ul>
<li>Serving as a liaison between Business Units and Global IT for AI data and ontology-related matters</li>
<li>Engaging with Global IT teams to understand enterprise data platforms, workflows, standards, and operational constraints</li>
<li>Translating Global IT practices, requirements, and workflows into clear, actionable guidance for Business Unit data stewards</li>
</ul>
<ul>
<li>Educating, guiding, and supporting Business Unit data stewards on their roles in data governance, ontology contribution, and AI data enablement</li>
<li>Supporting the development and documentation of workflows, expectations, and operating models for how BU data stewards engage with the Control Tower and Global IT</li>
</ul>
<ul>
<li>Ensuring Business Unit Data Stewards understand how to prepare, govern, and submit data assets for ontology integration and AI use</li>
<li>Promoting consistent adoption of governance, quality, and semantic standards across Business Units</li>
</ul>
<ul>
<li>Supporting integration of data and ontology enablement into Control Tower workflows</li>
<li>Providing operational insight into data readiness, semantic risks, and governance gaps to inform Control Tower decision-making</li>
<li>Identifying systemic issues and contributing recommendations to drive continuous improvement of data enablement processes</li>
</ul>
<ul>
<li>Ensuring semantic integrity, data quality, lineage, and consistency are maintained as data assets flow into AI solutions</li>
<li>Identifying systemic issues and recommending continuous improvement opportunities to Control Tower Operations leadership</li>
<li>Influencing corrective actions, tooling investments, or governance updates to mitigate long-term risk</li>
</ul>
<p>This role requires a minimum of 10 years of relevant work experience in data architecture, data governance, ontology development, semantic modeling, or related disciplines, supporting cross-functional initiatives spanning multiple business units and IT organizations.</p>
<p>The ideal candidate will have in-depth expertise in ontology design, semantic modeling, and domain-driven data architecture, as well as experience contributing to the development and implementation of data and ontology strategies. They will also have demonstrated experience serving as a bridge between business stakeholders and IT organizations, with a strong ability to translate technical platforms, workflows, and constraints into business-understandable guidance.</p>
<p>A Bachelor&#39;s level degree or diploma in Computer Science, Data Science/Engineering, Applied Mathematics/Statistics, Electronics/Electrical, Information Technology/Information Sciences, or a related field of study is required. A Master&#39;s or Ph.D. degree is preferred.</p>
<p>The successful candidate will be comfortable operating in ambiguous, evolving environments with enterprise-level impact, and will have a systems-thinking mindset with understanding of AI, analytics, and enterprise data platforms.</p>
<p>Highly desirable skills include proficiency in OWL (Web Ontology Language), RDF/RDFS – graph-based data model, storage in graph databases such as Neo4j or Amazon Neptune, and querying using SPARQL for RDF-based ontologies.</p>
<p>This is an onsite job based at our ADC, Raymond, OH office. One telecommuting workday per week may be possible with prior departmental approval.</p>
<p style="margin-top:24px;font-size:13px;color:#666;">XML job scraping automation by <a href="https://yubhub.co">YubHub</a></p>]]></Description>
      <Jobtype>full-time</Jobtype>
      <Experiencelevel>senior</Experiencelevel>
      <Workarrangement>onsite</Workarrangement>
      <Salaryrange>$120,400.00 - $150,500.00</Salaryrange>
      <Skills>ontology design, semantic modeling, domain-driven data architecture, data governance, AI data enablement, data quality, lineage, consistency, OWL (Web Ontology Language), RDF/RDFS – graph-based data model, graph databases, Neo4j, Amazon Neptune, SPARQL, ontology development, data architecture, data science, electronics, electrical, information technology, information sciences</Skills>
      <Category>Engineering</Category>
      <Industry>Automotive</Industry>
      <Employername>Honda</Employername>
      <Employerlogo>https://logos.yubhub.co/careers.honda.com.png</Employerlogo>
      <Employerdescription>Honda is a multinational Japanese conglomerate that produces automobiles, motorcycles, and power equipment. It is one of the largest automobile manufacturers in the world.</Employerdescription>
      <Employerwebsite>https://careers.honda.com</Employerwebsite>
      <Compensationcurrency></Compensationcurrency>
      <Compensationmin></Compensationmin>
      <Compensationmax></Compensationmax>
      <Applyto>https://careers.honda.com/us/en/job/10812/Principal-Data-Ontology-Architect-AI-Enablement</Applyto>
      <Location>Raymond</Location>
      <Country></Country>
      <Postedate>2026-04-22</Postedate>
    </job>
    <job>
      <externalid>54f58a4d-707</externalid>
      <Title>Senior Data Scientist</Title>
      <Description><![CDATA[<p>As a Senior Data Scientist at Formation Bio, you will be at the forefront of revolutionizing drug development through AI and advanced analytics. In this role, you&#39;ll lead crucial initiatives that directly impact our drug development portfolio, from developing sophisticated models for patient selection to creating AI-powered solutions for clinical trial optimization.</p>
<p>Responsibilities:</p>
<ul>
<li>Lead and execute complex data science projects that directly advance our drug development portfolio</li>
<li>Develop and implement sophisticated models for therapeutic hypothesis evaluation, including patient stratification and biomarker identification</li>
<li>Design and create AI models for modernizing clinical trial evaluations, including surrogate endpoints</li>
<li>Aid in the development and training of AI agents to automate and optimize biomedical workflows</li>
<li>Collaborate cross-functionally with clinical, technical, and research teams</li>
<li>Present complex analytical findings to senior stakeholders, including executive leadership</li>
</ul>
<p>About You:</p>
<ul>
<li>Required Qualifications:</li>
</ul>
<p>+ PhD in computational sciences or life sciences   + 3+ years of post-academic experience in life sciences (biotech, pharma, consulting)   + Strong programming skills, particularly in Python   + Extensive experience in multi-modal bioinformatics analysis</p>
<ul>
<li>Preferred Qualifications:</li>
</ul>
<p>+ Proven expertise in cloud computing environments, including proficiency with tabular and/or graph databases   + Strong background in machine learning and deep learning, particularly in biological applications   + Experience with large language models (LLM)   + Demonstrated ability to collaborate effectively with engineering teams on production systems   + Strong communication skills with proven ability to present complex technical findings to senior stakeholders</p>
<p>Total Compensation Range: $170,000 - $215,000</p>
<p>Where We Hire:</p>
<p>Formation Bio is prioritizing hiring in key hubs, primarily the New York City and Boston metro areas, with a hybrid model requiring 3 days per week in office. Applicants from the Research Triangle (NC) and San Francisco Bay Area may also be considered.</p>
<p style="margin-top:24px;font-size:13px;color:#666;">XML job scraping automation by <a href="https://yubhub.co">YubHub</a></p>]]></Description>
      <Jobtype>full-time</Jobtype>
      <Experiencelevel>senior</Experiencelevel>
      <Workarrangement>hybrid</Workarrangement>
      <Salaryrange>$170,000 - $215,000</Salaryrange>
      <Skills>PhD in computational sciences or life sciences, 3+ years of post-academic experience in life sciences (biotech, pharma, consulting), Strong programming skills, particularly in Python, Extensive experience in multi-modal bioinformatics analysis, Proven expertise in cloud computing environments, including proficiency with tabular and/or graph databases, Strong background in machine learning and deep learning, particularly in biological applications, Experience with large language models (LLM), Demonstrated ability to collaborate effectively with engineering teams on production systems, Strong communication skills with proven ability to present complex technical findings to senior stakeholders</Skills>
      <Category>Engineering</Category>
      <Industry>Healthcare</Industry>
      <Employername>Formation Bio</Employername>
      <Employerlogo>https://logos.yubhub.co/formation.bio.png</Employerlogo>
      <Employerdescription>A tech and AI driven pharma company focused on accelerating drug development and clinical trials.</Employerdescription>
      <Employerwebsite>https://www.formation.bio/</Employerwebsite>
      <Compensationcurrency></Compensationcurrency>
      <Compensationmin></Compensationmin>
      <Compensationmax></Compensationmax>
      <Applyto>https://job-boards.greenhouse.io/formationbio/jobs/6623947</Applyto>
      <Location>New York, NY; Boston, MA</Location>
      <Country></Country>
      <Postedate>2026-04-18</Postedate>
    </job>
    <job>
      <externalid>66cf66eb-76e</externalid>
      <Title>Senior Machine Learning Systems Engineer</Title>
      <Description><![CDATA[<p>As a Senior Machine Learning Systems Engineer at Reddit, you will lead the development of a platform for large-scale ML models. Your primary responsibilities will include designing end-to-end model lifecycle patterns (MLOps) to boost velocity of development for ML engineers, zero-to-one development and support of a graph ML codebase and platform, collaborating with ML engineers on performance tuning, optimizing batch data processing, and architecting pipelines to build and maintain massive graph data structures.</p>
<p>To be successful in this role, you will need 5+ years of experience in ML infrastructure, including model training and model deployments, hands-on experience with ML optimization, deep experience with cloud-based technologies, and proficiency with common programming languages and frameworks of ML. You should also have strong organizational and communication skills, experience working with graph databases and graph neural networks, and a deep understanding of the machine learning development lifecycle.</p>
<p>In addition to base salary, this job is eligible to receive equity in the form of restricted stock units, and depending on the position offered, it may also be eligible to receive a commission. Reddit offers a wide range of benefits to U.S.-based employees, including medical, dental, and vision insurance, 401(k) program with employer match, generous time off for vacation, and parental leave.</p>
<p style="margin-top:24px;font-size:13px;color:#666;">XML job scraping automation by <a href="https://yubhub.co">YubHub</a></p>]]></Description>
      <Jobtype>full-time</Jobtype>
      <Experiencelevel>senior</Experiencelevel>
      <Workarrangement>remote</Workarrangement>
      <Salaryrange>$216,700-$303,400 USD</Salaryrange>
      <Skills>ML infrastructure, model training, model deployments, ML optimization, cloud-based technologies, graph databases, graph neural networks, common programming languages, frameworks of ML</Skills>
      <Category>Engineering</Category>
      <Industry>Technology</Industry>
      <Employername>Reddit Inc.</Employername>
      <Employerlogo>https://logos.yubhub.co/redditinc.com.png</Employerlogo>
      <Employerdescription>Reddit is a community-driven platform with over 121 million daily active unique visitors and 100,000+ active communities.</Employerdescription>
      <Employerwebsite>https://www.redditinc.com</Employerwebsite>
      <Compensationcurrency></Compensationcurrency>
      <Compensationmin></Compensationmin>
      <Compensationmax></Compensationmax>
      <Applyto>https://job-boards.greenhouse.io/reddit/jobs/7731772</Applyto>
      <Location>Remote - United States</Location>
      <Country></Country>
      <Postedate>2026-04-18</Postedate>
    </job>
    <job>
      <externalid>77ff2013-8f9</externalid>
      <Title>Senior Product Manager, Context Engineering</Title>
      <Description><![CDATA[<p>ZoomInfo is where careers accelerate. We move fast, think boldly, and empower you to do the best work of your life. As a Senior Product Manager, Context Engineering, you&#39;ll be surrounded by teammates who care deeply, challenge each other, and celebrate wins.</p>
<p>With tools that amplify your impact and a culture that backs your ambition, you won&#39;t just contribute. You&#39;ll make things happen–fast.</p>
<p><strong>The Opportunity:</strong></p>
<p>ZoomInfo built the industry&#39;s most sophisticated GTM data acquisition infrastructure. Now we&#39;re applying that same rigor to context engineering,the emerging discipline that determines whether AI systems deliver transformative value or incremental improvement.</p>
<p>This role architects the context layer powering our AI intelligence across Copilot, GTM Studio, and MarketingOS. You&#39;ll transform how ZoomInfo&#39;s agentic workflows access, compress, and deliver precisely the right information at exactly the right moment.</p>
<p>The impact is organization-wide: every AI interaction, every intelligent recommendation, every autonomous agent action depends on the context infrastructure you’ll build.</p>
<p>We&#39;ve transitioned to AI-first product thinking company-wide. The context pipelines exist but remain nascent,creating a rare opportunity to define architectural patterns and platform standards that compound value across multiple product teams in the years to come.</p>
<p><strong>What You&#39;ll Do:</strong></p>
<p>Architect Context Acquisition Pipelines</p>
<p>Design and optimize how ZoomInfo retrieves, transforms, and delivers context from our semantic data layer, memory systems, and data producers. You&#39;ll balance retrieval quality against latency and cost constraints, implementing hybrid search strategies, intelligent caching, and context compression techniques that maintain information density while respecting token budgets.</p>
<p>Own the Context Layer Platform</p>
<p>Build infrastructure serving multiple product teams,Copilot, GTM Studio, MarketingOS,as internal customers. Establish API contracts, developer experience standards, and integration patterns that accelerate feature velocity.</p>
<p>Maintain the delicate balance between providing flexible building blocks and opinionated solutions that encode best practices.</p>
<p>Drive Quality Through Measurement</p>
<p>Implement evaluation frameworks using RAGAS metrics and custom benchmarks. Monitor retrieval precision, context relevance, hallucination rates, and system performance in production.</p>
<p>Translate quality signals into architectural improvements, working closely with ML engineers to iterate on embedding models, reranking strategies, and retrieval algorithms.</p>
<p>Navigate Emerging Research</p>
<p>Context engineering evolves weekly. You&#39;ll continuously evaluate innovations,GraphRAG for multi-hop reasoning, test-time compute scaling, multimodal retrieval, compression techniques,determining which advances warrant production investment versus which remain academic curiosities.</p>
<p>Bring external best practices to ZoomInfo while contributing learnings back to the broader community.</p>
<p>Orchestrate Cross-Functional Execution</p>
<p>Translate between three distinct worlds: ML engineers optimizing retrieval algorithms, platform engineers building scalable infrastructure, and product teams shipping customer features.</p>
<p>Establish communication cadences, prioritization frameworks, and decision-making processes that balance urgent requests against strategic platform development.</p>
<p><strong>What You’ll Bring:</strong></p>
<ul>
<li>4-6 years of product management experience with 2+ years in ML/AI infrastructure</li>
</ul>
<ul>
<li>Direct experience with production RAG systems, vector databases, or semantic search, context management</li>
</ul>
<ul>
<li>Experience with graph databases (e.g. Neo4j)</li>
</ul>
<ul>
<li>Track record building platform products serving multiple internal or external customers</li>
</ul>
<ul>
<li>Familiarity with context compression, embedding models, and retrieval evaluation frameworks</li>
</ul>
<ul>
<li>History of defining product vision in nascent technical domains where best practices are still emerging</li>
</ul>
<p><strong>Who You Are:</strong></p>
<p>Technical Foundation</p>
<p>Expert-level understanding of RAG system architecture,you can discuss embedding dimensionality trade-offs, vector database indexing strategies, and reranking approaches with depth.</p>
<p>You&#39;ve built or significantly contributed to production retrieval systems, not just managed them at arm&#39;s length.</p>
<p>Python and SQL proficiency enables you to review code, analyze retrieval issues, and prototype solutions for concept validation.</p>
<p>Platform Product Mindset</p>
<p>Experience building infrastructure products where internal engineering teams are your customers.</p>
<p>You measure success through downstream product velocity improvements and developer satisfaction scores, not just uptime metrics.</p>
<p>You understand platform economics,how each additional team using your infrastructure increases its value through shared learnings and amortized costs.</p>
<p>Intellectual Velocity</p>
<p>You read recent research papers from arXiv, ACL, NeurIPS.</p>
<p>You prototype emerging techniques to understand their practical constraints.</p>
<p>You maintain strong opinions weakly held, updating your architectural assumptions as evidence accumulates.</p>
<p>The discipline moves too fast for static expertise,continuous learning is non-negotiable.</p>
<p>Strategic Communication</p>
<p>You translate between technical depth and business impact fluently.</p>
<p>You can explain to executives why implementing GraphRAG takes 6 months but unlocks $10M in product capabilities.</p>
<p>You can communicate to engineers why business constraints require shipping &#39;good enough&#39; in 3 weeks rather than &#39;optimal&#39; in 3 months.</p>
<p>You influence without formal authority through data, clear reasoning, and earned credibility.</p>
<p><strong>The Environment:</strong></p>
<p>Reporting &amp; Collaboration</p>
<p>Report to the Senior Product Director for Context Engineering, Semantic Data Layer, and Agentic Memory within ZoomInfo&#39;s Intelligence team.</p>
<p>Work alongside PMs responsible for signals and ML scoring/recommendation models.</p>
<p>Together, you ensure our agentic workflows fill context windows with high-quality, information-dense content exactly when needed.</p>
<p>Pace &amp; Problems</p>
<p>Fast-moving engineering team that understands the space.</p>
<p>Company-wide AI adoption push creates both urgency and opportunity.</p>
<p>Expect interesting problems: How do we maintain sub-200ms retrieval latency at scale?</p>
<p>When does GraphRAG justify its indexing cost?</p>
<p>How do we balance context freshness with cache efficiency?</p>
<p>You&#39;ll shape answers that become architectural patterns across the organization.</p>
<p>Impact</p>
<p>Define a nascent discipline at a company that&#39;s already AI-first in product thinking and organizational structure.</p>
<p>Your architectural decisions compound,every improvement to context quality multiplies across Copilot, GTM Studio, MarketingOS, and future products we haven&#39;t imagined yet.</p>
<p>This is infrastructure work with direct line-of-sight to customer value.</p>
<p>#LI-PS1 #LI-remote</p>
<p style="margin-top:24px;font-size:13px;color:#666;">XML job scraping automation by <a href="https://yubhub.co">YubHub</a></p>]]></Description>
      <Jobtype>full-time</Jobtype>
      <Experiencelevel>senior</Experiencelevel>
      <Workarrangement>remote</Workarrangement>
      <Salaryrange>$89,200-$133,800 USD</Salaryrange>
      <Skills>Product Management, ML/AI Infrastructure, RAG Systems, Vector Databases, Semantic Search, Context Management, Graph Databases, Context Compression, Embedding Models, Retrieval Evaluation Frameworks</Skills>
      <Category>Engineering</Category>
      <Industry>Technology</Industry>
      <Employername>ZoomInfo</Employername>
      <Employerlogo>https://logos.yubhub.co/zoominfo.com.png</Employerlogo>
      <Employerdescription>ZoomInfo is a go-to-market intelligence platform that provides AI-ready insights, trusted data, and advanced automation to over 35,000 companies worldwide.</Employerdescription>
      <Employerwebsite>https://www.zoominfo.com/</Employerwebsite>
      <Compensationcurrency></Compensationcurrency>
      <Compensationmin></Compensationmin>
      <Compensationmax></Compensationmax>
      <Applyto>https://job-boards.greenhouse.io/zoominfo/jobs/8206116002</Applyto>
      <Location>Waltham, Massachusetts, United States</Location>
      <Country></Country>
      <Postedate>2026-04-18</Postedate>
    </job>
    <job>
      <externalid>3f5ece56-eaa</externalid>
      <Title>Senior Machine Learning Engineer, AI Platform - PhD Early Career</Title>
      <Description><![CDATA[<p><strong>[2026] Senior Machine Learning Engineer, AI Platform - PhD Early Career</strong></p>
<p>San Mateo, CA, United States</p>
<p>Every day, tens of millions of people come to Roblox to explore, create, play, learn, and connect with friends in 3D immersive digital experiences– all created by our global community of developers and creators.</p>
<p>At Roblox, we’re building the tools and platform that empower our community to bring any experience that they can imagine to life. Our vision is to reimagine the way people come together, from anywhere in the world, and on any device.</p>
<p>A career at Roblox means you’ll be working to shape the future of human interaction, solving unique technical challenges at scale, and helping to create safer, more civil shared experiences for everyone.</p>
<p><strong>You Will</strong></p>
<p>As a Senior Machine Learning Engineer on the AI Platform team, you will be a key contributor to building the cutting-edge systems that power AI at Roblox. You will focus on one of three high-impact tracks:</p>
<p><strong>Track 1: AI Platform Projects</strong></p>
<ul>
<li>Pioneer next-generation AI tooling to enhance the efficiency, cost, and usability of ML@Roblox.</li>
<li>Build and maintain core platform components: Serving Layer, Model Registry, Pipeline Orchestrator, and Training/Inference control planes.</li>
<li>Design great developer experiences (paved-road templates, tooling, visualizations) to reduce time-to-production and ensure foundational AI systems are scalable and reliable.</li>
</ul>
<p><strong>Track 2: Distributed Inference &amp; Systems Optimization</strong></p>
<ul>
<li>Architect and implement scalable distributed inference systems for efficiently serving LLMs and Large Recommender Models at massive scale.</li>
<li>Conduct deep, low-level performance analysis and optimize ML models (using techniques like continuous batching, speculative decoding, and quantization) and systems on GPU architectures to maintain peak performance and stability.</li>
</ul>
<p><strong>Track 3: Information Retrieval &amp; RAG for Gen AI</strong></p>
<ul>
<li>Lead the design and development of Retrieval-Augmented Generation (RAG) systems.</li>
<li>Build and maintain core information retrieval infrastructure—vector databases and knowledge graphs—to enable accurate grounding of Gen AI models.</li>
<li>Ship language models and 3D objects as a service for the Roblox community, making creation easier.</li>
</ul>
<p><strong>You Have</strong></p>
<ul>
<li>Possessing or pursuing a Ph.D. in Computer Science, Computer Engineering, Mathematics, Statistics, or a related technical field, with a thesis aligned to Roblox’s research areas.</li>
<li>Experience with high performance distributed systems, ML Infrastructure, LLM fine tuning/RL, Information Retrieval and Gen AI context generation.</li>
<li>Expertise in one or more of the following key areas:</li>
<li>AI/ML Platform Data stores - Features stores, Vector DBs and Knowledge Graphs.</li>
<li>LLMs - Fine tuning, Safety.</li>
<li>Agentic systems - Agent evaluation, context engineering.</li>
</ul>
<ul>
<li>Experience building agentic applications with context for real world applications.</li>
<li>Collaborative mindset and experience integrating and deploying optimized models with cross-functional teams, including data scientists and software engineers.</li>
<li>Experience with graph databases and large-scale GNNs (Graph Neural Networks)</li>
<li>Experience working with Kubernetes</li>
<li>Experience working with one or more cloud providers (e.g., AWS, Azure, GCP)</li>
<li>Experience working with high availability systems</li>
<li>Experience working with ML models, LLMs or other AI systems</li>
</ul>
<p>You may redact age, date of birth, and dates of attendance/graduation from your resume if you prefer.</p>
<p>As you apply, you can find more information about our process by signing up for Speak\_. You&#39;ll gain access to our practice assessment, comprehensive guides, FAQs, and modules designed to help you ace the hiring process.</p>
<p>For roles that are based at our headquarters in San Mateo, CA: The starting base pay for this position is as shown below. The actual base pay is dependent upon a variety of job-related factors such as professional background, training, work experience, location, business needs and market demand. Therefore, in some circumstances, the actual salary could fall outside of this expected range. This pay range is subject to change and may be modified in the future. All full-time employees are also eligible for equity compensation and for benefits as described on <strong>this page</strong>.</p>
<p>Annual Salary Range</p>
<p>$195,780—$242,100 USD</p>
<p>Roles that are based in an office are onsite Tuesday, Wednesday, and Thursday, with optional presence on Monday and Friday (unless otherwise noted).</p>
<p style="margin-top:24px;font-size:13px;color:#666;">XML job scraping automation by <a href="https://yubhub.co">YubHub</a></p>]]></Description>
      <Jobtype>full-time</Jobtype>
      <Experiencelevel>senior</Experiencelevel>
      <Workarrangement>hybrid</Workarrangement>
      <Salaryrange>$195,780—$242,100 USD</Salaryrange>
      <Skills>AI/ML Platform Data stores, LLMs, Agentic systems, Graph databases, Kubernetes, Cloud providers, High availability systems, ML models, LLMs, AI systems, Distributed systems, ML Infrastructure, RL, Information Retrieval, Gen AI context generation, Vector databases, Knowledge graphs</Skills>
      <Category>Engineering</Category>
      <Industry>Technology</Industry>
      <Employername>Roblox</Employername>
      <Employerlogo>https://logos.yubhub.co/careers.roblox.com.png</Employerlogo>
      <Employerdescription>Roblox is a global online platform that allows users to create and play a wide variety of games and experiences. With tens of millions of users, it is one of the largest online gaming platforms in the world.</Employerdescription>
      <Employerwebsite>https://careers.roblox.com</Employerwebsite>
      <Compensationcurrency></Compensationcurrency>
      <Compensationmin></Compensationmin>
      <Compensationmax></Compensationmax>
      <Applyto>https://careers.roblox.com/jobs/7403998</Applyto>
      <Location>San Mateo, CA</Location>
      <Country></Country>
      <Postedate>2026-03-06</Postedate>
    </job>
  </jobs>
</source>