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NewRocket

Forward Deployed AI Engineer/Anthropic – Data Intelligence

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Коротко по делу

We're hiring a hands-on, client-facing Forward Deployed AI Engineer with a solid foundation in Data Intelligence to design, build, test, and deploy enterprise AI solutions using Claude and other AI technologies.

Ключевые навыки

ClaudeAnthropic APIRetrieval-Augmented Generation (RAG)

Обязательные навыки

PythonSQLREST APIsJSONOAuthGitRAGembeddingsvector searchsemantic searchprompt engineeringLLM APIscloud platforms

Желательные навыки

JavaScriptTypeScriptJavaLangChainLangGraphLlamaIndexSemantic KernelPinecone

Обязательные языки

English professional

Чем предстоит заниматься

  • Partner directly with client business, data, technology, security, and ServiceNow stakeholders to identify high-value AI and Data Intelligence use cases.
  • Translate client requirements into practical technical designs, prototypes, production implementations, and iterative delivery plans.
  • Build AI-enabled applications and workflows that use trusted enterprise data to support knowledge discovery, employee assistance, service operations, customer service, document intelligence, decision support, and workflow automation.
  • Develop reusable Data Intelligence components, accelerators, integration patterns, and implementation playbooks.
  • Support the full solution lifecycle from discovery and data assessment through production rollout and continuous improvement.
  • Communicate solution designs, technical tradeoffs, risks, findings, and recommendations clearly to technical and non-technical client stakeholders.
  • Design and implement pipelines to ingest, transform, enhance, index, and retrieve structured and unstructured enterprise data.
  • Connect AI solutions to approved enterprise data sources, including ServiceNow, knowledge bases, document repositories, collaboration platforms, databases, data warehouses, data lakes, and third-party SaaS systems.
  • Support data profiling, data-quality assessment, schema mapping, metadata enrichment, classification, normalization, deduplication, and data lineage.
  • Work with client data owners and governance teams to define appropriate data access, retention, privacy, security, and usage controls.
  • Build data integration workflows using APIs, SQL, ETL/ELT tools, event-driven patterns, middleware, and custom services as appropriate.
  • Identify data gaps, quality issues, duplicate content, stale information, and access-control problems.
  • Design, build, and optimize retrieval-augmented generation (RAG) solutions using Claude and other approved LLM technologies.
  • Implement document-processing and knowledge-ingestion workflows, including parsing, chunking, metadata enrichment, embeddings, indexing, vector storage, hybrid retrieval, reranking, and source attribution.
  • Develop semantic-search and enterprise knowledge experiences.
  • Configure and evaluate vector databases, search platforms, relational databases, and enterprise knowledge repositories.
  • Build access-aware retrieval patterns that respect source-system permissions.
  • Improve answer quality through retrieval tuning, context management, source citation, grounding, relevance scoring, fallback behavior, and user feedback loops.
  • Define and execute RAG evaluations measuring retrieval quality, context relevance, groundedness, completeness, accuracy, latency, cost, and user experience.
  • Build and deploy LLM-powered applications using Claude, the Anthropic API, and other approved model providers.
  • Develop prompt and context-engineering approaches using clear instructions, structured inputs, examples, retrieval context, output schemas, and guardrails.
  • Implement structured outputs, tool use/function calling, API integrations, workflow orchestration, and error-handling patterns.
  • Build agentic AI workflows for reasoning over approved data, accessing authorized tools, executing bounded tasks, and routing exceptions to human reviewers.
  • Define agent instructions, context strategies, tool permissions, validation logic, escalation paths, and human-in-the-loop controls.
  • Support secure Model Context Protocol (MCP) for connecting AI applications to authorized enterprise systems.
  • Evaluate AI and agentic workflow behavior for task completion, consistency, safety, accuracy, groundedness, latency, cost, and operational reliability.
  • Integrate AI and Data Intelligence capabilities with ServiceNow workflows, data, knowledge, APIs, and user experiences.
  • Collaborate with ServiceNow architects and developers to ensure alignment with platform standards.
  • Help clients embed AI insights and recommendations into their workflows.
  • Develop test plans, test cases, evaluation datasets, and quality-assurance processes.
  • Measure and improve solution performance across all metrics.
  • Implement logging, tracing, monitoring, and feedback mechanisms.
  • Investigate production issues, identify root causes, document findings, and implement durable improvements.
  • Support release-management practices for code, prompts, configuration, and evaluation assets.
  • Contribute to LLMOps and DataOps practices.
  • Apply responsible-AI, security, privacy, and governance requirements throughout the lifecycle.
  • Implement safeguards for sensitive data, data leakage, unauthorized access, prompt injection, malicious content, unsafe tool use, and unintended agent behavior.
  • Support controls such as access-aware retrieval, data masking, encryption, output validation, source attribution, approval workflows, audit logging, and confidence-based escalation.
  • Work with client security, data governance, legal, compliance, and risk stakeholders.
  • Document technical designs, data flows, security controls, model limitations, evaluation results, operating procedures, and known risks.
  • Collaborate with AI Architects, AI Platform Engineers, data engineers, ServiceNow developers, product managers, designers, consultants, and client teams.
  • Participate in discovery workshops, architecture sessions, sprint planning, backlog refinement, demos, code reviews, retrospectives, and executive readouts.
  • Support client-facing technical research, demos, proofs of concept, implementation planning, and solution presentations.
  • Contribute reusable code, patterns, and playbooks to practice development.
  • Stray current on Anthropic and Claude capabilities, enterprise AI trends, and technologies.
  • Identify opportunities to improve offerings, accelerators, and delivery methodology.

Что требуется

  • 3+ years of relevant experience in software engineering, AI engineering, data engineering, analytics engineering, cloud engineering, systems integration, or related technical role.
  • Hands-on experience building applications, data pipelines, integrations, APIs, automations, or cloud-based services.
  • Experience working with structured and unstructured data, including relational databases, document repositories, APIs, and cloud storage.
  • Exposure to generative AI, LLMs, RAG, embeddings, vector search, semantic search, prompt engineering, AI agents, or LLM APIs.
  • Understanding of software-development best practices, including Git, code review, testing, debugging, documentation, and agile delivery.
  • Strong problem-solving skills.
  • Ability to work through delivery ambiguity.
  • Strong written and verbal communication skills.
  • Ability to work directly with clients in a consulting and professional-services environment.
  • Ability to travel up to 25-50% based on client and business needs.
  • For positive sign knows well.

Преимущества

  • Diversity and inclusion committed workplace.
  • Equal opportunity employer.
  • Affirmative action employer.

NewRocket brings 20 years of advising and supporting clients in designing, implementing, and managing AI-enabled digital workflows to improve employee and customer experiences. An Elite ServiceNow Partner and Anthropic Partner, the Company has completed over 3,000 projects across nine industry specializations.

ConsultingСредняя

Что говорят о компании

3.0/ 5

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