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
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
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