DS
Deepak Suhag
🤖 Generative AI

Overview: Generative AI Course in Battery Point

For engineers and builders in Battery Point, this course goes past prompting into the engineering behind production GenAI.

  • Live cohorts, not recordings
  • Practitioner-taught
  • Community & placement
  • Lifetime access

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🇦🇺 Course fee in Australia:A$519A$64920% off
2,000+
Students trained
6
Courses live
4.8 ★
Avg rating
Yes
Placement support

Built for Battery Point builders

Every module ends with something working — a RAG pipeline, an agent, an eval suite — built live alongside peers from Battery Point and beyond. This goes past prompting into the actual engineering behind production GenAI.

Curriculum breakdown

Module 1: Prompt engineering and structured chains

Battery Point students learn structured prompt design and function calling, not just one-off prompt tricks.

Topics covered

  • Prompt architecture and function calling
  • Structured output validation
  • Multi-step prompt chains

Module 2: RAG pipelines with vector databases

Building a working retrieval-augmented generation pipeline, end to end, as a Battery Point student.

Topics covered

  • Chunking and ingestion strategy
  • Vector database selection and indexing
  • Retrieval quality evaluation

Module 3: Agents and tool use

Building an agent that uses tools reliably, for Battery Point students moving beyond single-turn prompting.

Module 4: Evals, guardrails and deployment

Shipping what you've built with monitoring and safety guardrails in place.

How the cohort runs

Format and schedule

Live, project-based cohort

Fully online, live over Zoom, for Battery Point learners and peers across every module.

Who this course is for

Engineers and builders

Battery Point engineers who want the architecture behind production GenAI, not just API basics.

Technical founders

Battery Point founders building an LLM-powered product who need to move past a fragile prototype.

Outcomes and support

Portfolio project

Battery Point students leave with a working RAG or agent project they can show employers.

Prerequisites

Basic Python recommended

The course focuses on architecture decisions for Battery Point students, not syntax fundamentals.

Note

Covers OpenAI, Anthropic (Claude), and open-source models, so Battery Point students aren't locked into one provider's mental model.

Quick answer

The Generative AI Course in Battery Point is a hands-on, project-based program covering prompt engineering, RAG pipelines, agents and evals — the engineering behind production LLM systems, not just prompting tricks. It's built for Battery Point engineers and technical founders who want to move a fragile prototype into something production-ready, and it's worth it if your goal is a working portfolio project, not just theoretical understanding of how LLMs work.

How this compares to free YouTube tutorials or API documentation

  • You build a working RAG pipeline, agent and eval suite during the cohort, not just watch someone else build one
  • Covers OpenAI, Anthropic (Claude) and open-source models together, so Battery Point students aren't locked into one provider's documentation and mental model
  • Live feedback on your architecture decisions from a practitioner shipping production GenAI systems, not a comments section
  • Structured progression from prompting through RAG, agents, evals and deployment, instead of scattered standalone tutorials

Why Battery Point builders choose Deepak Suhag

Taught by someone who ships production GenAI systems for clients — not a course built from documentation alone.

🤖 Generative AI · Battery Point

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