Full-Time

Agentic AI Engineer

Healthcare AI

Deloitte

Deloitte

10,001+ employees

Global professional services and auditing

Compensation Overview

$110.7k - $372.9k/yr

+ Discretionary annual incentive

H1B Sponsorship Available

Atlanta, GA, USA

In Person

Travel may be required up to 50% on average.

Bachelor's

Category
Software Engineering (1)
Required Skills
LLM
Pinecone
Python
OpenAI
RAG
Version Control
LangGraph
Observability
LangChain
DevOps
HIPAA

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Requirements
  • A Bachelor's degree in Computer Science, Engineering, Data Science, Computational Linguistics, or a related field.
  • Demonstrated depth building and shipping production agentic systems, including strong software and machine-learning fundamentals and substantial recent hands-on agentic work.
  • Strong hands-on experience building production agent systems with modern orchestration such as LangGraph, LangChain, or an equivalent, including custom orchestration.
  • Experience designing and optimizing end-to-end Retrieval-Augmented Generation systems covering indexing, retrieval, reranking, grounding, and evaluation.
  • Strong understanding of memory and context management, including context windows, retrieval-driven context assembly, persistent memory, and high-signal context selection.
  • Deep practical understanding of large and small language model behavior, including strengths, limitations, hallucination risks, reasoning constraints, and latency and cost trade-offs, as well as methods for evaluating these factors.
  • Experience evaluating and debugging agent behavior through task-success and trajectory analysis, rather than output quality alone.
  • Strong Python engineering skills and modern software practices including testing, continuous integration and continuous delivery, version control, and API integration.
  • Experience implementing observability, tracing, and debugging for large-language-model-based systems in production.
  • Hands-on experience with at least one frontier model platform such as Anthropic, Google, or OpenAI, or with open-weight or self-hosted models such as Llama through vLLM, including production tool use and agent capabilities.
  • Ability to travel 0–50% on average based on the work and clients and industries or sectors served.
Responsibilities
  • Design and implement agentic systems capable of multi-step reasoning, planning, tool use, and workflow execution against complex regulated operational processes.
  • Build stateful workflows using frameworks such as LangGraph and LangChain, including branching, retries, self-correction, human-in-the-loop checkpoints, and reusable orchestration patterns.
  • Engineer long-horizon reliability through multi-step task completion, recovery from compounding errors, planning under uncertainty, and robust tool use when individual steps fail.
  • Build reasoning systems for regulated decisions using policy- and criteria-grounded outputs, proposer/critic/judge-style review, and auditable rationales.
  • Develop end-to-end Retrieval-Augmented Generation pipelines covering ingestion, chunking, embeddings, vector and hybrid retrieval, reranking, contextual compression, and grounding strategies.
  • Engineer memory and context management, including conversational state, persistent memory, retrieval-aware context assembly, and token-efficient context selection.
  • Apply modern context-delivery patterns such as MCP-style tool and context interfaces so agents access the right information at the right time.
  • Implement observability and tracing for prompts, tool calls, retrieval quality, agent traces, failures, drift, latency, and production behavior.
  • Apply guardrails, safety controls, and failure handling to reduce hallucinations and unsafe actions.
  • Evaluate agents at the trajectory and task level using multi-step task success, failure-mode and regression analysis, sandboxed test environments, retrieval and generation quality metrics, automated checks, and human review.
  • Engineer healthcare-grade safety through deployment evaluation gates, human oversight and escalation models, auditability and traceability for regulated decisions, and protected health information and HIPAA-aware data handling.
  • Build integrations with internal and external tools, APIs, enterprise systems, databases, and model providers so agents operate safely within real business workflows.
  • Deliver production-quality code with testing, continuous integration and continuous delivery, logging, versioning, and documentation, while balancing quality, safety, latency, cost, and model risk.
  • Partner with modeling and post-training engineers to improve model behavior for tool use, grounding, and long-horizon reasoning through evaluation-driven feedback and, where useful, fine-tuned or reasoning-optimized models.
  • Translate ambiguous, high-complexity operational processes into robust system logic and reusable AI patterns, and translate current research into practical engineering decisions.
Desired Qualifications
  • Experience with multi-agent systems and agent collaboration patterns.
  • Familiarity with vector databases and retrieval infrastructure such as Pinecone, Weaviate, or Milvus.
  • Exposure to model adaptation and fine-tuning techniques such as LoRA or QLoRA.
  • Understanding of traditional natural language processing concepts including tokenization, semantic similarity, entity extraction, summarization, and transformer fundamentals.
  • Experience operating in highly regulated, high-stakes, or operationally complex environments; healthcare exposure involving clinical, payer, or life-sciences workflows, or standards such as FHIR, is a plus.
  • A demonstrated habit of staying current with artificial intelligence research, benchmarks, and emerging engineering patterns.

What Deloitte does: Deloitte provides professional services to organizations, offering a range of services including consulting, auditing, tax, and advisory work to help clients improve performance and manage risk. How its products work: It blends practical advice with hands-on implementation through a global network of member firms and specialists. Teams assess clients’ needs, develop strategies, and help execute processes, controls, and transformations while upholding professional standards and integrity. How it differs from competitors: It operates at a large scale with a global network of diverse professionals, bringing cross‑disciplinary expertise and a wide range of services to many industries, which allows it to address complex challenges from multiple angles. What its goal is: To help clients and society become stronger by enabling sustainable progress and responsible growth through trusted services and collaboration.

Company Size

10,001+

Company Stage

Late Stage VC

Total Funding

$17.1M

Headquarters

Madrid, Spain

Founded

1845

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Simplify Jobs

Simplify's Take

What believers are saying

  • The London AI Studio targets production deployments in four weeks, speeding client conversion.
  • Deloitte plans 1,000 UK AI certifications on Google Cloud, strengthening delivery capacity.
  • ControlCatalyst.AI automates SOX and controls work, improving margins across audit engagements.

What critics are saying

  • Deloitte UK planned voluntary audit cuts June 16, 2026, signaling stagnant revenue.
  • SCANA settlement reached January 30, 2026, keeps audit-liability scrutiny intense.
  • Agentic AI from Google and Microsoft commoditizes Deloitte advice, eroding partner fees.

What makes Deloitte unique

  • Deloitte Omnia's agentic intelligence launched June 26, 2026 across 85,000 auditors.
  • ControlCatalyst.AI launched August 5, 2026, bundling GenAI and agentic AI for controls.
  • Deloitte AI Studio London opened June 17, 2026 with Google Cloud and Gemini.

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Benefits

Professional Development Budget

Hybrid Work Options

Company News

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Jan 29th, 2026
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Business Insider convened 15 HR and C-suite leaders in Davos to discuss how AI is reshaping hiring and talent pipelines. The roundtable, presented by Indeed, revealed growing concerns about entry-level positions and skills assessment. Deloitte's Elizabeth Faber emphasised maintaining a "human-led, technology-powered" approach whilst carefully navigating reduced junior hiring. TCW's Melissa Stolfi noted her firm has downsized its analyst class but maintains a pyramid structure to preserve apprenticeship culture and future leadership pipelines. Indeed's chief economist Svenja Gudell warned that whilst tech employers now demand five-plus years' experience, this creates future talent shortages if junior hiring continues declining. Salesforce's Nathalie Scardino said her company receives two million applications annually and has shifted focus from years of experience to learning aptitude. Manpower Group's Becky Frankiewicz noted AI can process candidates faster whilst reducing bias, potentially unlocking opportunities beyond traditional qualifications.

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Deloitte has acquired 100% of Virtus Partners, founded by Gonzalo and Marcelo Larraguibel, to enhance its strategic consulting business in Chile. This acquisition aims to offer comprehensive solutions from strategy design to execution. Deloitte's CEO, Christian Durán, emphasized the significance of this move in strengthening their market position. The merger combines Deloitte's global capabilities with Virtus Partners' local expertise, offering a unique strategic consulting platform in Chile.

Yahoo Finance
Jul 4th, 2025
Deloitte Canada Acquires Fintech Firm Allevar

Deloitte Canada has acquired Toronto-based fintech firm Allevar, enhancing its capabilities in regulatory compliance and technology solutions. Allevar specializes in fraud management, AML, payment systems, and KYC regulations, crucial for Canadian banks and the financial services industry. Allevar's leadership, including CEO Dan Wood, will join Deloitte's Regulatory Risk practice. This acquisition aligns with Deloitte's strategy for growth in the digital and AI age.