Data Science AI Strategy
Listed on 2026-08-25
-
IT/Tech
AI Business & Operations
Job Requisition #
26WD97210
Position OverviewAutodesk is building the next generation of AI capabilities that will transform how customers design and make. The Foundation Models team develops AI technologies that operate across Autodesk’s platform and business units. This role provides the analytical foundation needed to guide adoption, monetization,
GPU economics
, cost modeling, and strategic planning for these AI investments.
You will apply structured problem-solving, financial modeling, usage analytics, and cost analysis, including inference COGS,
GPU cost economics, GPU utilization, and compute efficiency
, to inform business decisions. This role requires fluency, or the ability to ramp quickly, in cloud,
GPU
, and inference cost dynamics as they relate to AI product economics, COGS, scaling, and margin.
Your work will clarify how foundation models scale, how GPU and inference
costs affect Autodesk’s economics, and how the company should prioritize investment and deployment across multiple product areas.
The successful candidate will operate at the center of Autodesk’s AI transformation, shaping business strategy and analytics that inform AI development, technology roadmaps, and long-term priorities. They will develop structured strategic frameworks, adoption and impact forecasts,
GPU and inference cost models
, and decision-support insights that guide Autodesk’s AI portfolio and enable leadership alignment across industry groups and executive forums.
Location: We are open to candidates in Canada, either hybrid or remote.
ResponsibilitiesBuild analytical and financial models that quantify the business impact of AI capabilities across Autodesk’s platform and industry groups, including Architecture, Engineering & Construction, Product Design & Manufacturing, and Media & Entertainment
Develop forecasts for AI adoption, usage, revenue influence,
GPU consumption, inference costs
, margin implications, and long-term planningConstruct business cases and decision-ready analysis to guide investment, prioritization, monetization, pricing, packaging, and leadership reviews
Model and optimize GPU economics, cloud compute costs, and inference economics
, including GPU utilization, capacity, scaling behavior, cost efficiency, COGS, cost-to-serve dynamics, and margin implicationsAnalyze GPU demand, utilization, and unit economics to identify opportunities to improve infrastructure efficiency and support scalable AI deployment
Translate product telemetry and infrastructure usage data into insights supporting monetization, pricing, packaging, GPU cost management, and cross-industry growth opportunities
Create executive- and Board-ready presentations, narratives, and slide materials that communicate strategic recommendations,
GPU and compute investment plans
, tradeoffs, and business priorities with clarity and impactCollaborate across multiple stakeholders and cross-functional teams, including Product, Finance, Engineering, and executive leadership, to align priorities and drive decisions forward
Contribute to building repeatable dashboards, reporting frameworks, and tools to track AI adoption,
GPU utilization, inference costs, COGS, and business performanceOperate as a self-starter with the ability to work independently, take ownership, and drive work forward in an ambiguous environment
Bachelor’s degree in a relevant field, such as Engineering, Data Science, Statistics, Computer Science, Economics, or equivalent experience
5+ years of experience in business strategy, analytics, strategic finance, business operations, product strategy, product analytics, management consulting, or a similarly analytical role
Experience building financial, operating, or business models across adoption, usage, revenue,
GPU or compute costs
, COGS, margin, and ROIStrong financial modeling and analytical skills;
Excel required, with SQL or Python familiarity preferredExperience with
GPU economics, cloud infrastructure economics, inference cost structures, compute utilization, or AI infrastructure cost modeling
, or demonstrated ability to ramp quickly in these areasAbility to analyze GPU utilization, scaling behavior,…
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