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Prompt Engineer

Kasmo Inc.Jersey City, NJ🇺🇸United StatesPosted 24 Jul 2026

Why This Role Stands Out

This role offers a unique opportunity to shape the future of Generative AI applications as a Prompt Engineer at Kasmo Inc., a respected company known for its innovative work. You'll thrive here if you possess a deep understanding of LLM interaction design and prompt optimization, eager to contribute your expertise to impactful enterprise solutions. Apply now to join a dynamic engineering team and advance your career in a cutting-edge field.

Quick Overview

Work Type
On Site
Level
Mid Senior

Job Description

Position:Prompt Engineer

Location: Jersey City, NJ

This role requires working onsite 4 days per week, and a F2F interview at the client’s Jersey City location is mandatory.
ss are eligible

LLM Interaction Design / Prompt Optimization / GenAI Application Quality

Level

Specialist Individual Contributor

Target / alternate titles

Prompt Engineer; LLM Interaction Designer; Conversational AI Designer; GenAI Specialist; AI Content Designer; NLP Prompt Specialist

Core keywords

prompt engineering, system prompt, few-shot, RAG, prompt evaluation, prompt injection, jailbreak, conversational AI, LangChain, Semantic Kernel, LlamaIndex, AWS Bedrock, Azure OpenAI, Copilot Studio, Power Platform

Recruiter red flags

Only casual ChatGPT usage; no structured evaluation; no understanding of RAG or prompt security; no prompt versioning; unable to quantify improvement or work within regulated business controls.

 

Role purpose

Design, test, govern, and continuously improve prompts, system instructions, conversation flows, and interaction patterns for AIRP LLM applications and related citizen-development experiences. The role ensures model outputs are accurate, grounded, safe, consistent, cost-aware, and aligned with business and compliance expectations.

Client-specific emphasis

  • Prompt work must support enterprise business use cases, not generic chatbot experimentation.
  • Reusable prompt patterns should be suitable for AIRP and, where applicable, Copilot Studio / Power Platform citizen-development scenarios.
  • Candidates must understand prompt security, sensitive data handling, citations/grounding, and structured evaluation.

Primary ownership

  • Prompt patterns, system instructions, response templates, and conversation policies for AIRP LLM use cases.
  • Prompt testing, versioning, evaluation, and quality-improvement workflows.
  • Reusable prompt libraries and guardrail patterns for business teams and responsible citizen development where applicable.

Key responsibilities

  • Design prompts for chatbots, copilots, RAG systems, document analysis, summarization, workflow agents, knowledge assistants, and decision-support experiences.
  • Develop system prompts, few-shot examples, tool-use instructions, response formats, escalation logic, citation behavior, and conversation policies.
  • Optimize prompts for KYC support, credit underwriting support, governance tracking, pitch book generation, Banker 360, Customer 360, deal library intelligence, financial crime quality, and sanctions screening use cases.
  • Build reusable prompt libraries and templates aligned to enterprise standards, business domains, AIRP patterns, and citizen-development guardrails.
  • Evaluate prompt performance using metrics such as task success, groundedness, hallucination rate, completeness, safety, user satisfaction, latency, and token cost.
  • Partner with engineers to implement prompt versioning, testing, deployment, and monitoring in production systems and CI/CD workflows.
  • Support RAG quality by assessing retrieval context, chunking quality, source citation behavior, response synthesis, and missing-context behavior.
  • Conduct adversarial testing for prompt injection, jailbreaks, instruction conflicts, sensitive-data leakage, unsafe outputs, and unauthorized tool use.

Must-have candidate profile

  • Strong understanding of LLM behavior, prompt design, tokenization, context windows, RAG, embeddings, and model limitations.
  • Hands-on experience with OpenAI APIs, Azure OpenAI, AWS Bedrock, Anthropic, LangChain, LlamaIndex, Semantic Kernel, Copilot Studio, or similar platforms.
  • Ability to debug LLM outputs using structured testing, error analysis, and iterative refinement.
  • Strong writing, analytical, communication, and stakeholder-management skills.
  • Understanding of prompt-security risks including prompt injection, jailbreaks, data leakage, hallucination, and instruction conflicts.
  • Ability to create repeatable prompt templates and evaluation evidence suitable for enterprise governance.

Preferred experience

  • Background in NLP, conversational AI, UX writing, technical writing, product design, knowledge management, business analysis, or financial-services operations.
  • Experience in financial services, legal, compliance, risk, operations, customer support, banker productivity, or enterprise knowledge domains.
  • Familiarity with Microsoft Copilot Studio, Power Platform, prompt registries, A/B testing, human review workflows, and evaluation tooling.

Skills

SAFe

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