AI Developer

Genetrix Consulting LLP

Pune District

Hybrid

INR 1,200,000 - 3,000,000

Full time

12 days ago

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Job summary

Genetrix Consulting LLP in Pune is seeking an AI/ML-focused engineer to drive production-grade AI capabilities. You will frame problems, design architectures and build end-to-end pipelines across models, retrieval and tools while ensuring safety, observability and cost controls.

The role requires hands-on AI/ML experience, strong Python skills, and the ability to work with cross-functional teams to deliver real business value in a hybrid Pune environment.

Qualifications

  • Minimum 2 years of hands-on AI/ML or AI-powered software experience.
  • Strong Python programming and software engineering skills.
  • Experience with LLM applications, retrieval, and tools.
  • Understanding of model evaluation, risk and deployment considerations.
  • Ability to communicate with cross-functional teams.

Responsibilities

  • Frame open-ended business questions into testable hypotheses, prototypes and success criteria.
  • Design AI system architecture combining models, retrieval, memory, tools and workflows.
  • Build ingestion, transformation, indexing and retrieval pipelines with careful grounding.
  • Develop production-ready AI capabilities with monitoring, observability and cost awareness.
  • Collaborate with enterprise teams to connect AI with Genetrix products and domains.

Skills

Production experience
Python
LLM apps
RAG tooling
APIs & testing
CI/CD
Product communication

Tools

Docker
Kubernetes
PyTorch
TensorFlow
Hugging Face
LangGraph
LlamaIndex

Job description

AI is moving from impressive demonstrations into the operating layer of real businesses. Intelligent systems are beginning to retrieve context, use tools, interpret multiple forms of data and take action across workflows. The difficult work is no longer only getting a model to produce a plausible answer; it is building a system that remains useful, measurable, secure, observable and cost-effective when real users, real data and edge cases arrive.

Genetrix sits at the intersection of customer data, Salesforce and applied AI. We build our own products, create intelligent capabilities for clients and work on problems where technology must produce a business result, not simply a demo. This is an opportunity to help shape how Genetrix conceives, evaluates and ships production-grade AI.

Why this role matters. A model can impress in a demo. A product earns trust only when its data, evaluations, engineering and operating decisions hold up in production. You will help make that transition real.

About Genetrix

Genetrix Technology is a boutique Salesforce consulting firm and ISV partner headquartered in Pune, India, with a US entity in Dover, Delaware. We specialize in Marketing Cloud, Data Cloud and Agentforce, supporting clients and Salesforce partners across the US, UK and APAC through direct and white-label delivery.

We combine consulting depth with product innovation. Our portfolio includes JourneyVoice, Campaign Clarity, Marketing Cloud Translator (MCT) and LinkLect. Our founder, Aman Batra, was recognized as a Salesforce Marketing Champion in 2021.

What you will own
  • Problem framing and experimentation. Turn open-ended business or product questions into testable hypotheses, prototypes, success criteria and an evidence-led build plan.
  • AI system architecture. Design applications and agents that combine models, retrieval, memory, tools, workflows and human hand-offs with clear boundaries and failure paths.
  • Data and retrieval. Build reliable ingestion, transformation, indexing and retrieval pipelines; reason carefully about context quality, permissions, freshness and grounding.
  • Applied model development. Select and adapt the right approach across LLMs, classical machine learning and relevant multimodal methods rather than forcing every problem into one pattern.
  • Evaluation and safety. Create representative datasets and evaluation loops for response quality, task completion, tool use, latency, cost, robustness and risk; add guardrails where the use case demands them.
  • Production engineering. Build maintainable services and APIs; contribute to deployment, monitoring, observability, versioning, incident diagnosis and continuous improvement.
  • Integration and product ownership. Connect AI capabilities with enterprise systems and Genetrix products, communicate trade-offs clearly and stay accountable from discovery through adoption.
What success looks like
  • You move beyond the prototype. Promising experiments become reliable capabilities that users can understand, adopt and trust.
  • You make quality visible. Claims about performance are supported by thoughtful evaluation, production signals and honest analysis, not selective examples.
  • You choose the right trade-offs. You balance model quality, latency, cost, security, maintainability and user experience according to the problem.
  • You create reusable leverage. The patterns, components and learning you produce make the next intelligent product faster and stronger to build.
  • You connect engineering to value. You can explain what the system changes for a customer, user or business and use that understanding to guide technical decisions.
What we value
  • Clarity: AI work is full of uncertainty. You communicate assumptions, evidence, trade-offs and limitations in a way that helps technical and non-technical people make good decisions.
  • Curiosity: You go beneath the surface of a model, dataset or user request. You test what could be true, examine why something failed and keep looking for the insight that creates leverage.
  • Sincerity: You do not disguise uncertainty or overstate a result. You are honest about what you know, surface risks early and protect the trust placed in you by users and teammates.
  • Learning and business thinking: The tooling will keep changing. You learn quickly without chasing novelty for its own sake, and you ask whether the system solves the right problem and creates durable value.
What you bring
  • Demonstrable production experience. At least 2 years of proper hands-on experience building AI/ML or AI-powered software, with deployed work, working demos, code, case studies or other evidence you can discuss in depth.
  • Strong software foundations. Fluency in Python and sound engineering practices across APIs, testing, debugging, data structures, version control and maintainable service design.
  • Modern AI depth. Practical experience with LLM applications, retrieval-augmented generation, embeddings, tool use, structured outputs, agents or model adaptation, and the judgment to know when simpler methods are better.
  • Machine-learning judgment. Understanding of data quality, training and validation, metrics, error analysis, overfitting, experimentation and the limits of a model.
  • Production awareness. Experience with databases, cloud infrastructure, containers, CI/CD, monitoring or MLOps practices sufficient to carry a system beyond a notebook.
  • Product and communication ability. You can clarify a vague need, explain a technical choice, collaborate across functions and stay focused on user and business outcomes.

We require at least 2 years of relevant experience, but tenure alone will not decide the outcome. We will look closely at what you personally built, how deeply you understand it, how it behaved outside a controlled demo and what decisions you would improve now.

Helpful, but not automatic gatekeepers
  • Frameworks and model ecosystems. Experience with PyTorch, TensorFlow, Hugging Face, LangGraph, LlamaIndex or comparable tools, used with an understanding of the abstractions underneath.
  • Evaluation and operations. Familiarity with experiment tracking, model or prompt versioning, tracing, observability, MLflow, Weights & Biases, Docker, Kubernetes or cloud AI platforms.
  • Specialized AI experience. Depth in computer vision, speech, recommendation, forecasting, optimization, knowledge graphs or fine-tuning is valuable when supported by real problem-solving experience.
  • Enterprise and responsible AI. Experience with permissions, privacy, security, human review, adversarial testing or integrations with systems such as Salesforce.
Level and compensation

The expected CTC range for this role is INR 12-30 LPA. Final compensation will be determined based on your skillset, depth of expertise, relevant experience, interview performance and the scope of responsibility discussed during the process.

This is a Pune-based hybrid role. Candidates must be open to relocating to Pune to be considered.

Before you decide to join us

A two-way decision. It is part of our culture that, before you sign an offer letter, we invite you to meet the entire team and spend time with us in our Pune office. If you are based in another city, we fly you to Pune so you can experience the environment, ask candid questions and decide whether the fit feels right. We want you to make this decision with context, not just from an interview call.

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