Data scientist - Agentic AI

Enterprise Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Master's or PhD in computer science, data science, mathematics, or related field.
  • 4-6 years of experience in production ML/AI systems, with 1-2 years in generative AI/LLM applications.
  • Hands-on experience with LangGraph or similar agentic orchestration frameworks.
  • Proficient Python developer experienced in production codebases.
  • Strong understanding of Kubernetes for deploying and managing workloads.

Responsibilities

  • Design and implement agentic workflows using LangGraph and related technologies.
  • Manage MCP servers, including tool schema definition and lifecycle management.
  • Integrate LLM capabilities at production scale, focusing on error handling and output optimization.
  • Develop retrieval and memory systems, including relevance tuning and hybrid retrieval.
  • Create evaluation frameworks for agentic systems, driving quality improvement through testing.
  • Collaborate with domain experts to formalize networking problems into agent workflows.
  • Deploy and operate containerized services in Kubernetes, contributing to CI/CD processes.

Benefits

  • Comprehensive health and wellbeing benefits for employees and their families.
  • Investment in personal and professional development programs.
  • Commitment to unconditional inclusion and flexibility in work arrangements.
Full Job Description
Data scientist - Agentic AI

This role has been designed as ''Onsite' with an expectation that you will primarily work from an HPE office.

Job Description:

Data Scientist - Agentic AI
The Data Scientist - Agentic AI builds and operationalizes the core agentic workflows that power Marvis, Juniper's next-generation AI assistant for network operations. Working at the intersection of data science, generative AI, and production engineering, this role is responsible for designing, implementing, and evaluating the reasoning pipelines, tool-calling patterns, skills, and MCP server integrations that enable Marvis to autonomously diagnose, troubleshoot, and resolve complex networking problems. The ideal candidate combines deep hands-on experience with LLM-based agentic frameworks (LangGraph preferred) with the software engineering rigor needed to ship reliable, observable AI systems in a cloud-native environment.

Management Level Definition: Contributions impact technical components of products, solutions, or services regularly and sustainably. Applies advanced subject matter knowledge to solve complex business and technical problems and is regarded as a subject matter expert in agentic AI and applied GenAI. Provides expertise and partnership to functional and technical project teams and may participate in cross-functional initiatives. Exercises significant independent judgment to determine best method for achieving objectives. May provide team leadership and mentoring to others.

Responsibilities:
  • Design, implement, and iterate on agentic workflows using LangGraph, including ReACT orchestration loops, dynamic tool selection and binding, multi-step reasoning, and self-correction patterns.
  • Develop and maintain MCP (Model Context Protocol) servers and skills - defining tool schemas, implementing domain-specific tools, writing skill playbooks (SKILL.md), and managing server lifecycle (versioning, deployment, monitoring).
  • Integrate and optimize LLM capabilities at production scale, including structured outputs, streaming, function/tool calling, prompt engineering, and robust error handling across agent execution paths.
  • Build and refine retrieval and memory services for agentic systems, including RAG pipelines, vector-store-backed semantic search, hybrid retrieval, long-term agent memory (semantic, episodic, procedural), and relevance tuning.
  • Design and execute evaluation frameworks for non-deterministic agentic systems - defining metrics, building test harnesses, running A/B tests on skills and tool configurations, and driving continuous quality improvement.
  • Collaborate with domain experts (network engineers, product managers) to formalize networking problems as agentic workflows, translating troubleshooting playbooks into skills, tools, and data pipelines.
  • Develop data analysis and transformation logic that runs in sandboxed execution environments (Code Mode), including multi-tool orchestration scripts, data aggregation, and visualization.
  • Deploy and operate containerized services in Kubernetes, contributing to CI/CD pipelines, container image management, health probes, and resource optimization.
  • Own observability for agentic workflows - implementing tracing, logging, cost tracking, and performance monitoring to ensure reliability of non-deterministic systems in production.

Education and Experience Required:
  • Master's or PhD degree in computer science, data science, mathematics, statistics, or a closely related quantitative discipline.
  • Typically, 4-6 years of experience building production ML/AI systems, with at least 1-2 years of hands-on work with generative AI and LLM-based applications.

Knowledge and Skills:
Agentic AI & GenAI (Required):
  • Production experience with agentic orchestration frameworks: LangGraph (strongly preferred), LangChain, Claude Agent SDK, or equivalent - beyond prototypes.
  • Solid understanding of agentic design patterns: ReACT loops, tool/function calling, dynamic tool binding, skill-based execution, multi-step planning, and self-correction.
  • Hands-on experience with MCP (Model Context Protocol) or equivalent tool-serving protocols: tool schema design, server implementation, registry management.
  • LLM API integration at scale: prompt engineering, structured outputs, streaming, error handling, and cost optimization.
  • RAG pipeline design: chunking strategies, re-ranking, hybrid search, vector stores (OpenSearch or equivalent), and relevance optimization.
  • Experience building evaluation and testing frameworks for non-deterministic AI systems (offline evals, A/B testing, LLM-as-judge).
Data Science & ML (Required):
  • Strong foundation in statistical and machine learning techniques - anomaly detection, time-series analysis, clustering, causal inference, or related methods.
  • Applied ML intuition: knowing when to use retrieval vs. fine-tuning, prompt engineering vs. structured generation, and how to debug model behavior in production.
  • Proficient Python developer with experience in production codebases (not just notebooks).
Infrastructure & Production Systems (Required):
  • Kubernetes: deploying, scaling, and managing workloads (Deployments, Services, ConfigMaps, Secrets, health probes).
  • CI/CD pipelines for automated build, test, and deploy (Jenkins, GitHub Actions, ArgoCD, or similar).
  • Container image management: building, tagging, versioning via Docker; familiarity with a container registry (ECR, GCR).
  • Backend service development: FastAPI or equivalent; REST/GraphQL API design.
  • Observability for AI systems: experience with tracing, monitoring, and logging tools (LangFuse, Prometheus, or equivalent).
Additional Preferred Skills:
  • Experience with agent memory systems (e.g., LangMem, custom memory architectures).
  • Familiarity with sandboxed code execution environments (E2B, Firecracker, or similar).
  • Networking domain knowledge (wireless/wired diagnostics, network troubleshooting) is a strong plus but not required.
  • Experience with AWS Bedrock, OpenSearch Serverless, or similar managed AI/ML services.
  • Great written and verbal communication skills; ability to articulate technical designs to senior leadership.


What We Can Offer You:

Health & Wellbeing

We strive to provide our team members and their loved ones with a comprehensive suite of benefits that supports their physical, financial and emotional wellbeing.

Personal & Professional Development

We also invest in your career because the better you are, the better we all are. We have specific programs catered to helping you reach any career goals you have - whether you want to become a knowledge expert in your field or apply your skills to another division.

Unconditional Inclusion

We are unconditionally inclusive in the way we work and celebrate individual uniqueness. We know varied backgrounds are valued and succeed here. We have the flexibility to manage our work and personal needs. We make bold moves, together, and are a force for good.

Let's Stay Connected:



Job:
Engineering
Job Level:
TCP_04

"The expected salary/wage range for this position is provided below. Actual offer may vary from this range based upon geographic location, work experience, education/training, and/or skill level.
- United States of America: Annual Salary USD 155,500 - 315,000 in California
The listed salary range reflects base salary. Variable incentives may also be offered."

Information about employee benefits offered in the US can be found at https://myhperewards.com/main/new-hire-enrollment.html

About Hewlett Packard Enterprise Development LP

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The commitment to employee growth is evident through comprehensive training and development programs that encourage continuous learning and career advancement. Leadership development and diversity training are pillars of the company's strategy, ensuring that all team members have the opportunity to lead and innovate.

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