Staff Applied AI Engineer

Posted 2 Days Ago
Be an Early Applicant
South Jordan, UT, USA
Hybrid
Entry level
Information Technology • Mobile • Software • Analytics
The Role
Build unified structured and unstructured data pipelines, predictive and prescriptive analytics, churn models with quantified uncertainty, and production LLM agents. Own enterprise AI architectures, RAG systems, MLOps and LLMOps standards, evaluation, monitoring, cost optimization, security, and reliability. Partner with business stakeholders to translate ambiguous problems into scalable AI solutions and document reference architectures adopted by other teams.
Summary Generated by Built In

About Us

Ivanti empowers organisations to manage and secure technology smarter through our AI‑powered Ivanti Neurons platform. We help IT and Security teams reduce complexity, work proactively, and deliver better outcomes at scale for customers around the world.

Ivanti helps organisations work smarter through Autonomous Endpoint Management powered by our AI‑driven Ivanti Neurons platform—delivering better outcomes for our customers by reducing complexity and enabling proactive IT and security operations.

About the Role 

We're looking for a rare, full-stack data and AI practitioner who can operate fluidly from raw data all the way to production AI systems and the enterprise architecture that supports them. You will ingest and reason over everything from highly structured warehouse data in Snowflake to messy unstructured sources, turn it into defensible analytics, and ship agentic AI solutions that are both intelligent and ruthlessly cost-efficient. 

This is a builder-first role with real architectural ownership. You'll write the models and the agents yourself, and you'll define the reference architectures, patterns, and standards that let the rest of the organization build on top of your work. If you're equally comfortable defending a confidence interval and a system-design decision, this role is for you. 

What You'll Do 

  • Unify structured and unstructured data. Build pipelines that pull structured data from Snowflake (and adjacent warehouses/lakes) alongside unstructured sources — text, documents, logs, transcripts — into clean, modeling-ready datasets. 
  • Deliver decision-grade analytics. Produce customer churn analytics with properly quantified uncertainty (confidence/credible intervals), not just point estimates, and communicate what the numbers can and can't support. 
  • Build predictive and prescriptive models. Move beyond "what will happen" to "what should we do about it" — forecasting, propensity, and optimization/recommendation systems that drive concrete business actions. 
  • Engineer agentic AI systems. Design and ship LLM-powered agents and workflows that are token-efficient by design — tight context management, retrieval and caching strategies, model routing, and evaluation harnesses that keep cost and latency low without sacrificing quality. 
  • Architect for the enterprise. Define reference architectures, integration patterns, and governance standards spanning data ingestion, model development, MLOps/LLMOps, security, and observability — and bring stakeholders along with clear diagrams and documentation. 
  • Own quality and reliability. Establish evaluation, monitoring, and guardrails for drift, accuracy, bias, safety, and cost across both classical ML and GenAI systems. 
  • Partner across the business. Translate ambiguous business problems into technical solutions and explain technical tradeoffs to non-technical stakeholders. 

What You Bring (Required) 

  • Strong hands-on data engineering with Snowflake (modeling, performance, cost management) and SQL, plus experience wrangling unstructured data. 
  • Solid applied statistics: you can build churn/retention models and correctly express uncertainty with confidence or credible intervals, and you understand the assumptions behind them. 
  • Demonstrated experience building predictive and prescriptive analytics that shipped and influenced decisions. 
  • Production experience with LLM/agentic systems — frameworks such as LangGraph, the Claude Agent SDK, CrewAI, or custom orchestrators — with a real track record of optimizing for token efficiency, cost, and latency. 
  • Production RAG experience (chunking, hybrid search, reranking, retrieval evals) is strongly expected at the senior+ level. 
  • Architecture chops: you can design and document end-to-end systems and patterns others build on, and defend those decisions with evidence. 
  • Strong Python and a software-engineering mindset (testing, version control, CI/CD). 
  • Excellent written and verbal communication; comfort working asynchronously in a distributed team. 

Nice to Have (Preferred) 

  • Cloud certifications (AWS Solutions Architect, Google Cloud Professional ML Engineer, Azure AI Engineer) and/or TOGAF for enterprise architecture. 
  • Experience with inference optimization (quantization, model routing, caching, vLLM/TensorRT-style serving). 
  • MLOps/LLMOps tooling and platform-building experience. 
  • Domain experience in [your industry], and prior work owning AI strategy or build-vs-buy decisions. 

What Success Looks Like (First 6–12 Months) 

  • A unified data foundation that combines Snowflake and unstructured sources for downstream modeling. 
  • A churn analytics product trusted by the business, with quantified uncertainty and clear recommended actions. 
  • At least one production agentic solution that demonstrably reduces token spend/latency versus a naive baseline while meeting quality bars. 
  • A documented reference architecture and set of standards adopted by other teams. 

Why Ivanti?

  • Friendly flexible working model: Empower excellence whether you’re at home or in the office and support work-life balance.
  • Competitive compensation & total rewards: Including health, wellness, and financial plans tailored for you and your family.
  • Global, diverse teams:Collaborate with talented people from 23+ countries.
  • Learning & development:Grow your skills with access to best-in-class learning tools and programs.
  • Equity & belonging:We value every voice. Your story helps inform our solutions for a changing world.

What drives us

Ivanti’s mission is to elevate human potential within organizations by managing, protecting and automating technology for continuous innovation.

It is through diverse and inclusive hiring, decision-making, and commitment to our employees and partners that we will continue to build and deliver world-class solutions for our customers.

To learn more about Ivanti’s Mission and Core Values. 

Inclusion at Ivanti

Ivanti is proud to be an Equal Opportunity Employer. We’re committed to building a diverse team and fostering an inclusive environment where everyone belongs. We welcome applicants from all backgrounds and walks of life. Need adjustments during the process? Reach out to [email protected] we’re happy to help.

#LI-AA1
#LI-Hybrid

Skills Required

  • Hands-on data engineering experience with Snowflake, including modeling, performance, and cost management
  • Strong SQL skills and experience working with unstructured data
  • Applied statistics experience, including churn or retention modeling and confidence or credible intervals
  • Experience building and deploying predictive and prescriptive analytics that influence business decisions
  • Production experience building LLM or agentic AI systems using agent frameworks or custom orchestrators
  • Experience optimizing AI systems for token efficiency, cost, and latency
  • Production RAG experience with chunking, hybrid search, reranking, and retrieval evaluation
  • Ability to design and document end-to-end enterprise architectures and reusable technical patterns
  • Strong Python skills and software engineering practices, including testing, version control, and CI/CD
  • Excellent written and verbal communication skills
  • Experience working asynchronously in a distributed team
  • Cloud certification such as AWS Solutions Architect, Google Cloud Professional ML Engineer, or Azure AI Engineer
  • TOGAF certification or experience
  • Experience with inference optimization, including quantization, model routing, caching, vLLM, or TensorRT-style serving
  • MLOps, LLMOps tooling, or platform-building experience
  • Experience owning AI strategy or build-versus-buy decisions

Ivanti Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Ivanti and has not been reviewed or approved by Ivanti.

  • Leave & Time Off Breadth — Flex-PTO for U.S. exempt employees and a formal volunteer time program are emphasized and regarded positively. These policies provide ample flexibility for time away from work.
  • Healthcare Strength — U.S. medical coverage is described with reputable carriers and HSA-compatible options, with plan details employer-verified. This signals a solid healthcare foundation within the package.
  • Wellbeing & Lifestyle Benefits — Offerings span mental-health support, wellness programs, remote work options, and volunteer time. These elements add meaningful non-cash value to total rewards.

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The Company
HQ: South Jordan, UT
3,014 Employees

What We Do

The automation platform that makes every IT connection smarter and secure across devices, infrastructure and people to deliver personalized employee experiences.

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