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Lead AI Engineer
Bridge-it
Delhi
4-8 years
Today
$34.9K–55.4K/yr
Full-time
Remote
Skills Required
LLM
RAG
LangChain
OpenAI
Gemini
vLLM
LangGraph
OpenRouter
Milvus
pgvector
Neo4j
Cypher
Cohere
LangSmith
OpenTelemetry
Description
Bridge-it is an early-stage EdTech company building a career-readiness platform for K-12 students, counselors, and districts. The role leads the AI Copilot team and owns agentic workflows, retrieval, safety, evaluation, and production reliability.
Company: Bridge-it
Role: Lead AI Engineer
Location: Remote | New Delhi, Delhi, India
Experience
- 4–8 years in industry
- 4–8 years of professional software engineering experience
- 2–5 years building LLM-powered products in production
- 2 years of leading a team
- Strong Python engineering fundamentals
- Strong grasp of agentic architecture patterns
- Hands-on experience with agent orchestration frameworks
- Context engineering / harness engineering experience
- Experience designing and optimizing agent memory
- Deep practical knowledge of RAG systems
- Proven experience building and operating LLM evaluation systems
- Hands-on AI observability experience
- Experience shipping structured outputs as product interfaces
- Comfort with cloud infrastructure
- Excellent communication and interpersonal skills
- Demonstrated ability in requirement analysis and task decomposition
Responsibilities
- Design, build, and operate agentic LLM workflows in LangGraph serving live student and counselor traffic over WebSockets
- Own RAG quality across vector stores, knowledge graph, and structured platform data
- Build chunking strategy, reranking, and grounded generation with typed claims and evidence citation
- Enforce safety and trust with guardrails, constitutional rules, faithfulness verification, abstain/escalate behavior, and tenant isolation
- Build and extend the evaluation platform with online evaluators, offline regression suites, latency baselines, and A/B experimentation
- Drive latency and cost optimization across model selection, prompt and context engineering, selective retrieval, caching, and streaming
- Instrument and debug production behavior using tracing and observability tools
- Partner with backend, frontend, and product teams on response envelopes, interaction contracts, and rollout plans
- Break epics into staged implementation plans with acceptance criteria
- Sequence work across engineers, review code, and mentor teammates
- Analyze ambiguous product requirements and turn them into well-scoped technical specs and tickets
- Communicate trade-offs clearly to product and leadership
Additional Responsibilities
- Lead the AI Copilot end to end
- Own the agentic orchestration graph
- Own retrieval and grounding
- Own safety guardrails
- Own response contracts with the frontend
- Own the evaluation platform that keeps the system honest
- Contribute to the redesign that collapses multiple experimental graph variants into a single workflow-first architecture
- Introduce typed claim verification, constitutional rules, and per-turn decision records
- Treat live-QA findings as first-class inputs to design
- Grow into a techno-management position
Nice To Have
- Experience at an early-stage startup
- Working knowledge of MCP
- Knowledge graphs in retrieval or recommendation contexts
- Durable workflow engines and event-driven architectures
- Multi-tenant SaaS security models
- FERPA/COPPA-adjacent compliance awareness
- EdTech or other regulated/high-trust consumer domains
- AI infrastructure experience
- Model serving experience
- GPU inference experience
- Gateway/router layers
- Cost/latency-aware routing across providers
- SLMs and self-hosted LLMs
- vLLM
- TGI
- Ollama
- Quantization
- Fine-tuning
- Distillation
- Traditional ML
- scikit-learn
- PyTorch
- Recommender systems
- Forecasting and data analytics
- Time-series methods
- Cohort analysis
- Product analytics
- Big data processing/streaming
- Spark
- Flink
- Kafka
- dbt-style transformation workflows
More Skills
Python, agentic workflows, routing, planning, parallel retrieval, tool execution, verification, streaming, chunking, reranking, typed claims, evidence citation, input/output guardrails, constitutional rules, faithfulness verification, multi-tenant data isolation, LLM-as-judge evaluators, New Relic, Sentry, PostHog, JSON contracts, schema validation, GCP, Cloud Run, Pub/Sub, GCS, BigQuery, Django, PostgreSQL, Next.js, WebSockets, Temporal, MCP, OpenTelemetry GenAI, Open-weight models
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