Sr. Prompt Engineer

LogicMonitor

Maharashtra

On-site

INR 3,000,000 - 5,000,000

Full time

14 hours ago
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Job summary

LogicMonitor is seeking an experienced hands-on AI/ML engineer specializing in prompt engineering and enterprise AI workflows. You will build and integrate AI fabric solutions, improve prompts and context, and deliver automation across enterprise systems.

You will work with stakeholders to translate requirements into practical designs, collaborating with product, data, and engineering teams. This role is based in Pune/Bangalore and emphasizes governance, security, and measurable quality.

Qualifications

  • 4+ years of experience in prompt engineering, software/data/automation engineering, or similar hands-on role.
  • Experience building production-oriented LLM applications, AI agents, or AI workflow automations.
  • Strong prompt-engineering judgment: design prompts, diagnose failures, run experiments.
  • Knowledge of workflow automation concepts and tools like n8n.
  • Proficiency in SQL for data extraction; relational databases and schemas.
  • Experience integrating APIs, SaaS, cloud services with proper security and logging.
  • Familiarity with context engineering and retrieval concepts.
  • Rigorous testing mindset with measurable quality metrics.
  • Ability to work with senior stakeholders to define use cases and adoption plans.

Responsibilities

  • Build and deliver enterprise AI solutions on the shared AI Fabric using established patterns and connections.
  • Improve prompts, system instructions, structured outputs, tool-use, and context for business workflows.
  • Develop automation workflows with n8n; contribute Python/Strands SDK when needed.
  • Integrate AI with enterprise systems and data sources (Slack, Salesforce, Gong, Jira, Confluence, Google Workspace, Snowflake, AWS).
  • Apply source-selection and context-window practices; manage permissions and data access.
  • Follow evaluation controls, test datasets, and regression testing; contribute to quality metrics.
  • Collaborate with senior stakeholders and technical owners from use-case definition to launch and measurement.
  • Contribute reusable modules and documentation for AI Fabric and n8n solutions.

Skills

Prompt engineering
LLM applications
Python
JavaScript/TypeScript
SQL
APIs
Workflow automation
Stakeholder communication

Education

Bachelor's degree in CS or related field

Tools

n8n
Jira
Confluence
Slack
Salesforce
Gong
Snowflake
AWS

Job description

About Us

We love going to work and think you should too. Our team is dedicated to trust, customer obsession, agility, and striving to be better everyday. These values serve as the foundation of our culture, guiding our actions and driving us towards excellence. We foster a culture of performance and recognition, allowing us to transform growth as we enable our employees to do the best work of their careers.

About Us

We love going to work and think you should too. Our team is dedicated to trust, customer obsession, agility, and striving to be better everyday. These values serve as the foundation of our culture, guiding our actions and driving us towards excellence. We foster a culture of performance and recognition, allowing us to transform growth as we enable our employees to do the best work of their careers.

This position is located in Pune/ Bangalore

You’ll be working in a major tech center of Pune, India. Across the globe, our Centers of Energy serve as hubs where we accelerate productivity and collaboration, inspire creativity, and cultivate a culture of connection and celebration. Our teams coordinate their time in Centers of Energy to reflect how they work best.

What You’ll Do

LogicMonitor® is the AI-first hybrid observability platform powering the next generation of digital infrastructure. LogicMonitor delivers complete visibility and actionable intelligence across on-premises, cloud, and edge environments. By anticipating issues before they strike, optimizing resources in real time, and enabling faster, smarter decisions, LogicMonitor helps IT and business leaders protect margins, accelerate innovation, and deliver exceptional digital experiences without compromise.

Our customers love LogicMonitor’s ability to bring cloud and traditional IT together into one view, as seen in minimal churn rates, expansion business, and exciting new customer references. In fact, LogicMonitor has received the highest Net Promoter Score of any IT Infrastructure Management provider. LogicMonitor also boasts high employee satisfaction. We have been certified as a Great Place To Work®, and named one of BuiltIn’s Best Places to Work for the seventh year in a row!

This is a hands-on individual-contributor role for a prompt engineer who helps deliver dependable enterprise AI solutions for defined go‑to‑market and business problems. You will build on the AI Fabric—the shared foundation for governed execution, trusted context, reusable integrations, and observability—and use automation plus code to deliver workflows people can rely on.

You will work across prompts, models, context, data, tool and API integrations, workflow automation, evaluations, and operational controls. This is not a prompt‑only role: you will apply established platform patterns to build and improve well‑scoped solutions, partnering with stakeholders and the appropriate technical owners from use‑case definition through launch, measurement, and continuous improvement.

Here’s a closer look at this key role:
  • Partner with stakeholders to clarify defined go‑to‑market and business use cases, then build and deliver enterprise AI solutions on the shared AI Fabric using established patterns, approved connections, and agreed scope. Contribute improvements rather than creating one‑off or parallel implementations.
  • Apply and iteratively improve established prompt, system‑instruction, structured‑output, tool‑use, model‑routing, and context‑window practices so outputs are useful, grounded, predictable, and fit for a business workflow.
  • Build and support n8n or comparable automation workflows using established patterns for triggers, APIs, webhooks, human approvals, retries, fallbacks, scheduled jobs, and error handling. Contribute Python, Strands SDK, or other lightweight code when a workflow needs approved custom logic or durable runtime behavior.
  • Integrate AI solutions with enterprise systems and governed data sources such as Slack, Salesforce, Gong, Jira, Confluence, Google Workspace, Snowflake, AWS services, and internal APIs. Pull, join, and validate data from the appropriate tables while applying established access, data‑handling, and audit standards.
  • Apply established context and data standards to select the approved sources for a use case; shape, prioritize, and refresh context; manage context‑window limits; support permission‑aware retrieval; and keep response behavior grounded in source data. Escalate new source, access, or architecture decisions to the appropriate owners.
  • Apply established decision criteria for LLM‑driven and deterministic components. For example, use models for language understanding and generation while relying on SQL, rules, validated APIs, and calculation services for financial, policy, or data‑accuracy‑critical operations; elevate new architectural tradeoffs when needed.
  • Apply existing evaluation and quality controls, including representative test sets, regression tests, LLM‑as‑judge or deterministic scoring, failure taxonomies, prompt and retrieval experiments, and release criteria. Contribute evidence and improvements to the shared evaluation approach.
  • Use approved observability and operational practices for production solutions, including structured logs, outcome and quality metrics, token and cost visibility, audit trails, alerting, troubleshooting guidance, and feedback loops.
  • Apply privacy, security, and reliability controls such as data minimization, PII redaction or placeholder restoration where appropriate, secrets management, schema validation, human‑in‑the‑loop gates, graceful degradation, and least‑privilege integration patterns.
  • Work directly with senior go‑to‑market and business stakeholders, product, data, security, and engineering teams to clarify use cases, translate approved requirements into practical solution designs, surface risks and tradeoffs to the appropriate owners, and use observed usage to improve solutions.
  • Contribute reusable technical modules, templates, and documentation that help future AI Fabric and n8n solutions be faster, safer, and easier to support.
What You’ll Need
  • 4+ years of experience in prompt engineering, software engineering, data or automation engineering, AI/ML engineering, solutions engineering, or a comparable hands‑on technical role.
  • Demonstrated experience building and improving production‑oriented LLM applications, AI agents, RAG systems, semantic search, structured‑output pipelines, or AI workflow automations.
  • Strong prompt‑engineering judgment: able to design prompt and output contracts, diagnose failures, run controlled experiments, and choose when prompting alone is insufficient.
  • Working knowledge of workflow automation concepts and tools such as n8n or comparable platforms, including integrations, webhooks, error handling, retries, and operational support; able to learn and apply the team’s n8n standards.
  • Working proficiency in SQL and practical ability to write queries that select, join, aggregate, and validate data from tables. Working knowledge of relational databases, schemas, data quality, and the tradeoffs of using governed data sources.
  • Ability to use Python and/or JavaScript or TypeScript for API integration, data transformation, automation, and AI workflow implementation.
  • Experience integrating APIs, SaaS platforms, webhooks, cloud services, and enterprise data systems with appropriate authentication, secrets, logging, error‑handling, and data‑access practices.
  • Experience applying context‑engineering and retrieval concepts including established source‑selection practices, embeddings, chunking, metadata, permission‑aware retrieval, source attribution, refresh patterns, context‑window management, and grounding techniques.
  • A rigorous testing and evaluation mindset, including test datasets, regression testing, output validation, and measurable quality metrics.
  • Ability to work directly and credibly with senior stakeholders: clarify a business use case, communicate solution design, implementation status, risk, and tradeoffs, and support adoption with both technical and non‑technical partners.

LogicMonitor is an Equal Opportunity Employer At LogicMonitor, we believe that innovation thrives when every voice is heard and each individual is empowered to bring their unique perspective. We’re committed to creating a workplace where diversity is celebrated, and all employees feel inspired and supported to contribute their best.

For us, equal opportunity means fostering a truly inclusive culture where everyone has the chance to grow and succeed. We don’t just open doors; we invite you to step through and be part of something bigger. All qualified applicants will receive consideration for employment without regard to race, color, religion, sex, sexual orientation, gender identity, national origin, disability, or status as a protected veteran.

Notice Regarding Use of AI in Hiring

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You may opt out of AI processing at any time, and your application will still be reviewed. To opt out, please contact us at opt.out@logicmonitor.com.

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